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The scientific and technological capability which is detailed in the enclosed article called Nano-Sensor Modelling for Intra-Body Nano-Networks by Mustafa Alper Akkas is being used against me to torture me from an unknown remote location and my name is Gretta Fahey aka Margaret Fahey from Newbrook, Claremorris, Co. Mayo, Eircode F12 Y560,  Republic of Ireland.  This aforementioned torture has continued for more than eighteen years.

 

 

Published: 11 February 2021
Nano-Sensor Modelling for Intra-Body Nano-Networks
Mustafa Alper Akkaş
Wireless Personal Communications volume 118, pages3129–3143 (2021)Cite this article
In this work, the author has evaluated the propagation of electromagnetic waves inside the human tissue such as blood, skin and fat for single-path and multi-path layers according to nano sensor transmit power calculations. In particular, the propagation characteristics of the Intra-Body Nano-Network communication channel are calculated using a theoretical approach. The analysis in this paper provides an evaluation related to the path loss, bit error rate, signal to noise ratio and the channel capacity. The model is evaluated for each single-path effect and multi-path effect. The effects of human tissue for each blood, skin and fat for single-path effect and multi-path are included in the analysis. The model frequency range is chosen from 0.01 to 1.5 THz frequencies, which are ideal for designing nano sensors antennae and using THz range for communication. This paper will also guide other researchers who are working on the electromagnetic radiation performance of Intra-Body Nano-Network and Nano sensors designed at the THz range.

Introduction
Next generation wearable technologies, which is also supported with Internet of Things (IoT) and Nano-technology have to be in miniature size. Therefore, the designers need to work on higher frequencies such as 0.1–10 THz to reduce antenna size [1]. With the help of Nano-technology, nano-communication and THz waves, nano or micro size machines can communicate with each other [2, 3]. Since nano-technology was put forward in 1959, it has not only gained great attention in body-centric applications, but it has also gained great attention in many other fields [4]. Nano-technology, nano-networks and nano-communication will greatly affect human life and health. Nano-machines which are especially designed for the human body can be placed inside the body or surface-mounted on the body. With the help of these technologies, patient data can be sent to monitoring centers independent of the patient location [5].

One of the most important parts to achieve nano-technology is improving nano-machines without battery. Nano-machines are nano sized nodes which are used for communication, sensing, computation etc. [6]. In Intra-Body Nano-Networks, communication is done by nano-machines which function like nano-nodes [1]. The communication between nano-nodes in Intra-Body Nano-Networks is still an open issue and there are challenges to be solved [7]. So far, two communication methods have been used for Intra-Body Nano-Networks. These are Electromagnetic Communication (EMC) and Molecular Communication (MC). EMC communication uses EM waves for communication and transmission of information. MC systems are different from EMC, forming a new and interdisciplinary research area, which use the absence or presence of a selected type of molecule to digitally encode messages [8]. Molecules are used as a communication carrier in MC systems. MC is a new, open and interdisciplinary research area, and there are many challenges to be solved. These challenges are definition of MC channel model, characterization of MC mechanisms, development of its architectures and the networks protocols [9].

As shown in Fig. 1, the magnitude of the node needs to be in the nanometer size because the place where nano-nodes are placed is too small in biomedical applications. Nano nodes require THz antennas for their dimensions in EM communication. In THz band communication, phase shifting effects and path loss fluctuates according to the environment. Therefore electromagnetic (EM) waves need to communicate where phase shifting effects and path loss fluctuates are minimum. In EMC transmission distance between nodes can be increased by using the bandwidths where absorption and path loss is minimum.

Fig. 1
figure1
A schematic network architecture for intra-body nano-networks with nano-sensors

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We know that battery dependent machines are limited to use. This rule is also valid for nano-machines. That is why alternative energy methods should be developed like changing vibrational movement, mechanical movement or hydraulic energy into electrical energy. Another alternative energy method is charging batteries wirelessly but it’s not easy to implement. Whence, nano-machines transmit power is very important and is covered in this paper [10, 11]. Part of this work was presented in [12] and an extended version of the article is given in this study.

In this paper, the author has carried out calculations of the Path Loss, bit error rate (BER), signal to noise ratio (SNR) and Channel Capacity effect based on the channel model for each single-path effect and multi-path effect, shown in Fig. 2. The effect of the human tissues according to Path Loss, BER, SNR and the Channel Capacity for each blood, skin and fat for single-path effect and multi-path effect are included in the all analysis.

Fig. 2
figure2
Multi-path channel model

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This paper is organized as follows. In Sect. 2, related work is investigated. In Sect. 3, models for intra-body nano-networks for single and multi-layers are given. In Sect. 4, graphs of the theoretical model are shown. Conclusions are drawn in the last section.

Related Work
Akyıldız et al. [13] present an overview of two main alternatives for nano-communication, namely Electromagnetic Communication and Molecular Communication in the THz Band. The aim of the study is to provide a better understanding of current research topics in this important field and pave the way for future studies in nano-networks.

Yang et al. [14] modeled the human tissue with a 3-D numerical model at the THz range but they did not consider multi-layers according to the nano-sensor transmit power calculation. They also specify this lack in their conclusion part.

Pratap Singh et al. [8] analyzed the probability density function of radiation absorption noise and included the properties of different tissues of the human body to demonstrate its applicability. Also, the closed form expression of error probability for MNC under radiation noise is derived. Numerical analysis is shown in different tissues of the human body: The polarization factor of the incoming EM radiation is shown as well as the skin, brain and blood.

Again, Pratap Singh et al. [15] proposes a more general and appropriate noise model as the Gaussian distribution to derive a new closed form expression of the conditional error probability for the nano communication system. They have compared their noise model with different models in the literature. Finally, with respect to the conditional error probability, closed form statements derived for average bit error rate, the Weibull-Gamma and Mixture Gamma were derived from fading channels.

Hadeel Elayan et al. [16] analyzed the photo thermal effects of the THz range inside the human body as a heat diffusion mathematical model. Shortly they have analyzed EM waves release energy as a heat to their environment.

Zhang et al. [17] investigates the mathematical model for in vivo nano networks at the THz range including the information speed and the noise of link. In their analytical model, they have investigated signal-to-noise ratio according to different information and power allocation for body-centric nano-networks.

In their paper, Piro et al. [18] present the range of transmission and the channel capacity for intra-body systems for general healthcare applications. Again, Piro et al. [19] has studied the communication capabilities of a body area nano-network by carefully taking into account the inhomogeneous and disordered structure offered by biological tissues.

However, most of the works presented above consider the human tissue as a single level. In this work, a multi-layer communications method has been proposed. In addition, the reflection properties between blood, fat and skin are investigated. This work also calculates the propagation of electromagnetic waves inside the human tissue containing blood, skin and fat for single and multi-layers according to nano-sensor transmit power calculation. Transmit power calculation is an innovative topic which has not been investigated in detail before as it is in this paper. Hence, this work investigates Intra-Body Nano-Network communication propagation channel characteristics which are calculated using a theoretical approach that is modeled providing an evaluation about the losses, capacity, BER and SNR considering the multipath effect of the channel according to the nano-sensor transmit power calculation.

Model for Intra-Body Nano-Networks for Single and Multi-layers
The Friis Transmission Equation is used to calculate received power from an antenna to another antenna at some distance given a transmission frequency and antenna gains. Friis Equation is used to find the ideal power received at an antenna from basic information about the transmission [20]. For the propagation in human tissue, noise power (NP), thermal noise and additional losses (Lmedium) at the receiver which are caused by blood, skin and fat are added to Friis equation in formula (1). To calculate the NP, the Bandwidth (B) and ambient temperature (T), which is taken as body temperature of 310.15 K, need to be calculated. Consequently, the received signal in the Friis equation can be updated as [21]:

Pr(dBm)=Pt(dBm)+Gr(dB)+Gt(dB)−LFSPL(dB)−LNP(dBm)−Lmedium(dB)SystemLoss
(1)
Table 1 shows the values in equations.

Table 1 Constants and parameters
Full size table
In Eq. (1) LNP calculated as 10log10(103 × kB × T × B). Lmedium equals to:

Lmedium(dB)=Lβ+Lα
(2)
Lmedium (2) is a combination of Lβ and Lα. Lα which is 8.96αd(dB) is the transmission loss caused by attenuation with attenuation constant α. Lβ is the attenuation loss due to the difference of the wavelength of the signal in medium, λ, compared to the wavelength in free space, λ0. So Lβ can be also written as 20log(λ0/ λ). Here, in this formula λ = 2π/β and λ0 = c/f (Here c is speed of light) then Lβ can be written as 154 − 20log(f) + 20log(β) as dB. Then Lmedium which is our body in this work becomes:

Lmedium(dB)=6.4+20log(d)+20log(β)+8.69αdα=2πfμ∈′2[1+(∈′′∈′)2−1]−−−−−−−−−−−−−−−−−√,β=2πfμ∈′2[1+(∈′′∈′)2+1]−−−−−−−−−−−−−−−−−√
(3)
where parameters and constants are also given in Table 1. Note that Lmedium in (2) depends on the β, α of the human body [19]. The human body’s dielectric properties in this paper are obtained from [14].

In these analyzes, the communication channel is modeled as an independent Rayleigh distributed random variable, Xi, i ∈ {1,2} [22, 23]. The single-path model received energy spectral density is given by (4) and has a distribution of (5).

r=X2SNR
(4)
f(r)=1E[X21]SNRexp(E[X21]SNRE[X22]SNR)
(5)
The received signal is modeled as the addition of two independent Rayleigh distributed random variables.

Consequently, the composite attenuation constant, X, for the multi-path model is given by [22, 23]:

X2 = X21+(X2⋅Γ⋅exp(−αΔ(r)))2−2⋅X1⋅X2⋅Γ⋅exp(−αΔ(r))×cos(π−(ϕ−2πλΔ(r)))
(6)
The SNR is given by SNR = Pt − Lf − Pn in paper [21]. In this paper Pt assumes − 15 to 5 dBm which are low enough for nano-node [7]. LNP is given by (7) as dBm [24]:

LNP=10log10(1000×k×T×B)(dBm)
(7)
According to paper [23] 2PSK modulation has more range when we compare with other modulations. For this reason, in this paper 2PSK modulation is considered. The BER rate for 2 PSK is 0.5erfc((SNR)1/2) in additive white Gaussian noise (AWGN) [23].

The multi-path channel model in blood, fat and skin is shown in Fig. 2. The reflections are the same in the other human tissue because according to the papers [25, 26] the relative magnetic permeability is 1 in all parts of the body. The single path is the direct path, which is shown with the red line between the two sensors in Fig. 2. The medium all around the sensor nodes can be considered homogeneous for instance the model is suitable for higher depths.

The multi-path channel model is given by (8) [20, 21, 25]

Lf(dB)=LHumanTissue(dB)−10logA−−√A=1+(Γ×exp(−αΔr))2−2Γexp(−αΔr)2×cos(π−(ϕ−2πfλΔ(2)))Δr=r−d,r=r1+r2(inFig.2)
(8)
where human tissue is the path loss due to the single path given in (4) and the second part of the equation is the second path’s attenuation factor which is unit in dB [22, 23, 27].

C=Blog2[1+S/N]
(9)
Capacity is the highest data rate that can be delivered reliably over a channel. The resulting capacity is measured in bits/s because the logarithm is taken in base 2 in Eq. (9) [14]. The unit of the bandwidth of the channel (B) is hertz. The signal and noise powers are S and N. The ratio between S and N is called SNR. The detailed model of the system is shown step by step in Fig. 3 to make this section more easily readable.

Fig. 3
figure3
Detailed model of the system

Full size image
Numerical Results
In this part the proposed channel model’s path loss, BER, attenuation factor, channel capacity and SNR values are given.

Figure 4a gives the values of path loss for blood, skin and fat. Figure 4b gives a 3D version of Fig. 4a. In Fig. 4a and in the following figures the red lines show the blood, the black lines show the skin and the blue lines show the fat. The lines style at figures are the same in the following figures that is why lines style legend is not given in some following figures not to make them complicated. Figure 4 shows that when the frequency and distance increases path loss is increased. Path loss is directly proportional to frequency and distance. Figure 4 also shows that blood has higher path loss than skin and fat. The reason why the blood has the highest path loss is that the amount of water in blood is more than in skin and fat. The human blood contains about 45% of erythrocytes and 54.3% of plasma by volume. The plasma contains about 92% water, while the erythrocytes, about 64% by weight. These papers [28,29,30] also prove why the water has higher absorption and path loss.

Fig. 4
figure4
Path loss vs. distance for 0.5 to 1.5THz in single-path channel model. a 2D version, b 3D version

Full size image
Figure 5a shows BER vs. distance for 0.5–1.5 THz. Figure 5b examines the BER for blood in the case of − 15 to 5 dBm transmit power and frequency at 0.5 THz. The results show that BER of the 0.5–1.5 THz operating frequencies in blood, skin and fat for the single path channel model increases between 1 and 3 mm for blood, 1–5 mm for skin and 2–7 mm for fat at minimum received signal power of − 5 dBm. The millimeter size communication distance increments are very important for nano-nodes inside the body. Figure 5 proves that the communication range depends on the value of the dielectric loss of the human body, remaining power of the node and the operating frequency. In Fig. 5b shows that each 5 dBm increment in Pt increases the communication distance around 0.1 mm. Figure 5c, d gives the values of capacity and SNR respectively that have been calculated from (8). Figure 5c shows that path loss increments cause less capacity and Fig. 5d shows that when the frequency decreases SNR increases and when the path loss increases SNR decreases that is why 0.5 THz fat has the highest SNR.

Fig. 5
figure5
BER, capacity and SNR versus distance for 0.5 to 1.5THz in single-path channel model. a BER versus distance, b BER for blood, c capacity, d SNR

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Figure 6a, b give the values of path loss at 0.5–1.5 THz for multi-path channel according to distance and depth respectively. When we compare Fig. 6a with Fig. 4a the path loss is around 80–300 dB in one-path model and the path loss is around 100–300 dB in multi-path model. Figure 6a also shows that in the multi-path model, communication distance at path loss 100 dB is up to 0.8 mm, 1.4 mm and 2 mm in blood, skin and fat respectively. Also in one-path model, the range is increased by 0.2 mm, 0.4 mm and 0.6 mm in blood, skin and fat respectively at 0.5 THz. Added reflection component of the signals do not help to increase the communication distance in the multi-path model because there is not much reflection in human tissue as seen in Fig. 6b. Figure 6b also shows that path loss values depend on human tissue distance and depth. Fluctuations at Fig. 6b decreases when the depth increases and almost disappears after distance around 0.2 mm. Figure 6c shows path loss, distance and depth relation in 3D dimensions at 0.5 THz. The 3D graph shows that at depths smaller than 0.2 mm there is a wave, which is too small to affect communication distance. In Fig. 6d attenuation factor is given which is the second part of the Eq. 7. As seen in the Fig. 6d attenuation factor decreases at depths smaller than 0.2 mm this caused the increased path loss in multi-path model and decreased the communication distance. This is also one reason why the multi-path channel model has smaller communication distance than one path-channel model.

Fig. 6
figure6
Path loss vs. distance and depth for 0.5–1.5THz in multi-path channel model. a Path loss versus distance, b Path loss versus depth. c Path Loss, Distance and Depth Relation. d Attenuation

Full size image
Figure 7 shows BER vs. distance for 0.5–1.5 THz operating frequencies for the multi-path channel model. BER versus depth has not been given because there is almost zero BER at all depths. Figure 7a shows that the increment in the path loss has small effect on BER in multi-path channel model. The BER rate is directly proportional to the distance. Figure 7b examines the BER for blood in the case of − 15 to 5 dBm transmit power Pt at frequency 0.5–1.5 THz. When we compare Figs. 5b with 7b we see that there is no much difference between one-path and multi-path channel models. Only in the multi-path channel model, the transmission distance decreases around 1 mm at 0.5 THz.

Fig. 7
figure7
BER versus distance for 0.5–1.5THz in multi-path channel model. a BER versus distance, b BER for blood

Full size image
Figure 8 shows Capacity versus distance and depth for 0.5–1.5 THz operating frequencies for the multi-path channel model. Figure 8a gives capacity values according to the distance at − 5 dBm transmit power. Figure 8b gives capacity values according to depth at − 5 dBm transmit power. Figure 8c gives capacity values according to distance at − 15 to 5 dBm from 0.5 to 1.5 THz. From Fig. 8a we can understand that capacity and path loss inversely proportional to each other as expected. Figure 8b shows the capacity at − 5 dBm transmit power according to depth. Fluctuations at Fig. 8b decreases when the depth increases and almost disappears after distance around 0.2 mm as in the Fig. 6b. Figure 8c gives capacity values according to distance at − 15 to 5 dBm transmit power in the blood. Figure 8c also shows that frequency and capacity inversely proportional to each other and transmit power increases the capacity as expected.

Fig. 8
figure8
Capacity vs. distance and depth for 0.5 to 1.5THz in multi-path channel model. a Capacity versus distance. b Capacity versus depth. c Capacity in the Blood

Full size image
Figure 9 shows SNR vs. distance and depth for 0.5–1.5 THz operating frequencies for the multi-path channel model. Figure 8a gives SNR values according to distance at − 5 dBm transmit power. Figure 8b gives SNR values according to depth at − 5 dBm transmit power. Figure 8c gives SNR values according to distance at − 15 to 5 dBm from 0.5 to 1.5 THz. From Fig. 9a we can understand that SNR and path loss are inversely proportional to each other as expected. Figure 9b shows the SNR at − 5 dBm transmit power according to depth. Fluctuations at Fig. 8b decreases when the depth increases and almost disappears after distance around 0.4 mm but see the effect at capacity and path loss up to 0.2 mm. Figure 9c gives SNR values according to distance at − 15 to 5 dBm transmit power. Figure 9c also shows that frequency and SNR inversely proportional to each other and transmit power increases the capacity as expected. At Fig. 9c SNR values of 1 THz and 1.5 THz frequencies are not given because they are around the zero level. SNR values can help other researchers who are working on terahertz intra body networks. SNR is also affected from distance, frequency depth and transmit power. Figure 9 also reminds us that SNR is indirect proportional to frequency and direct proportional to transmit power.

Fig. 9
figure9
SNR versus distance and depth for 0.5 to 1.5THz in multi-path channel model. a SNR versus distance. b SNR versus depth. c SNR in the Blood

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Conclusion
Due to the small communication range inside the human body EM waves do not propagate easily especially in THz Bands. This paper examines the path loss, BER, channel capacity and SNR of nano-sensors propagating THz EM waves inside the blood, skin and fat according to transmit power and channel type. Briefly, the paper sets the theoretical background for the propagation of THz EM waves in blood, skin and fat in the THz range and determines the incurred path loss, BER, capacity and SNR of nano-sensors in single-channel and multi-channel. The paper also shows the reasons for why the multi-path channel model has smaller communication distance than one path-channel model. Numerical evaluations show that data communication is possible over the 0.01–1.5 THz band at transmit power − 15 to 5 dBm but to reach more communication distance, a new communication model needs to be investigated. Theoretical results show that wireless nano-sensor can communicate through the human body but thermal noise is too high to use the THz waves inside the human body. That is why new techniques need to be develop not to harm the body at THz range. The results in this paper also aim to guide other researchers that will be working in the area of the intra-body nano-networks. In the future, experiments can be done by using spectroscopy at THz range to validate the numerical findings.

References
1.
Akyildiz, I. F., & Jornet, J. M. (2010). Electromagnetic wireless nanosensor networks. Nano Communication Networks, 1(1), 3–19.

Article

Google Scholar

2.
Akyildiz, I. F., Brunetti, F., & Blázquez, C. (2008). Nanonetworks: A new communication paradigm. Computer Networks, 52(12), 2260–2279.

Article

Google Scholar

3.
Chopra, N., et al. (2014). Understanding and characterizing nanonetworks for healthcare monitoring applications. In 2014 IEEE MTT-S international microwave workshop series on RF and wireless technologies for biomedical and healthcare applications (IMWS-Bio). IEEE.

4.
Feynman, R. P. (1992). There’s plenty of room at the bottom [data storage]. Journal of Microelectromechanical Systems, 1(1), 60–66.

Article

Google Scholar

5.
Abdelaziz, A. F., et al. (2015) Terahertz signal propagation analysis inside the human skin. In 2015 IEEE 11th International Conference on Wireless and Mobile Computing, Networking and Communications (WiMob). IEEE.

6.
Bush, S. F. (2010). Nanoscale Communication Networks. Norwood: Artech House.

Google Scholar

7.
Dressler, F., & Fischer, S. (2015). Connecting in-body nano communication with body area networks: Challenges and opportunities of the Internet of Nano Things. Nano Communication Networks, 6(2), 29–38.

Article

Google Scholar

8.
Singh, S. P., Singh, S., Guo, W., Mishra, S., & Kumar, S. (2020). Radiation absorption noise for molecular information transfer. IEEE Access, 8, 6379–6387.

Article

Google Scholar

9.
Pierobon, M., & Akyildiz, I. F. (2010). A physical end-to-end model for molecular communication in nanonetworks. IEEE Journal on Selected Areas in Communications, 28(4), 602–611.

Article

Google Scholar

10.
Lee, S. J., et al. (2015). Design of wireless nanosensor networks for intrabody application. International Journal of Distributed Sensor Networks, 2015, 90.

Article

Google Scholar

11.
Akkaş, M. A. (2016). A comparative review of mote size and communication method for wireless sensor network. In Applied mechanics and materials (Vol. 850). Trans Tech Publications.

12.
Akkaş, M. A. (2016). Nano-sensor capacity and SNR calculation according to transmit power estimation for body-centric nano-communications. In 2016 3rd international symposium on wireless systems within the conferences on intelligent data acquisition and advanced computing systems (IDAACS-SWS). IEEE.

13.
Akyildiz, I. F., Jornet, J. M., & Pierobon, M. (2011). Nanonetworks: A new frontier in communications. Communications of the ACM, 54(11), 84–89.

Article

Google Scholar

14.
Yang, K., et al. (2015). Numerical analysis and characterization of THz propagation channel for body-centric nano-communications. IEEE Transactions on Terahertz Science and Technology, 5(3), 419–426.

Article

Google Scholar

15.
Singh, S. P., Kumar, A., & Kumar, S. (2017). Novel expressions for CEP/BEP under GGD noise for nano communication system. International Journal of Electronics Letters, 5(4), 463–474.

Article

Google Scholar

16.
Elayan, H., Johari, P., Shubair, R. M., & Jornet, J. M. (2017). ’Photothermal modeling and analysis of intrabody terahertz nanoscale communication. IEEE Transactions on NanoBioscience, 16(8), 755–763.

Article

Google Scholar

17.
Zhang, R., Yang, K., Abbasi, Q. H., Qaraqe, K. A., & Alomainy, A. (2018). Analytical modelling of the effect of noise on the terahertz in-vivo communication channel for body-centric nano-networks. Nano Communication Networks, 15, 59–68.

Article

Google Scholar

18.
Piro, G., et al. (2015). Terahertz communications in human tissues at the nano-scale for healthcare applications. IEEE Transactions on Nanotechnology, 14(3), 404–406.

Article

Google Scholar

19.
Piro, G., et al. (2016). Terahertz electromagnetic field propagation in human tissues: A study on communication capabilities. Nano Communication Networks, 10, 51–59.

Article

Google Scholar

20.
Friis, H. T. (1946). A note on a simple transmission formula. Proceedings of IRE, 34, 254–256. https://doi.org/10.1109/jrproc.

Article

Google Scholar

21.
Akkaş, M. A. (2018). Using wireless underground sensor networks for mine and miner safety. Wireless Networks, 24, 1–10.

Article

Google Scholar

22.
Vuran, M. C., & Silva, A. R. (2010) Communication through soil in wireless underground sensor networks–theory and practice. In Sensor networks (309–347). Berlin: Springer.

23.
Akyildiz, I. F., Sun, Z., & Vuran, M. C. (2009). Signal propagation techniques for wireless underground communication networks. Physical Communication, 2(3), 167–183.

Article

Google Scholar

24.
Couch, I. I., & Leon, W. (1994). Modern communication systems: Principles and applications. Upper Saddle River: Prentice Hall.

MATH

Google Scholar

25.
Pethig, R., & Kell, D. B. (1987). The passive electrical properties of biological systems: Their significance in physiology, biophysics and biotechnology. Physics in Medicine and Biology, 32(8), 933.

Article

Google Scholar

26.
Collins, C. M., et al. (2002). Numerical calculations of the static magnetic field in three-dimensional multi-tissue models of the human head. Magnetic Resonance Imaging, 20(5), 413–424.

Article

Google Scholar

27.
Li, L., Vuran, M.C., & Akyildiz, I. F. (2007). Characteristics of underground channel for wireless underground sensor networks. In Proceedings of Med-Hoc-Net’07.

28.
Akkaş, M. A., & Sokullu, R. (2015). Channel modeling and analysis for wireless underground sensor networks in water medium using electromagnetic waves in the 300–700 MHz range. Wireless Personal Communications, 84(2), 1449–1468.

Article

Google Scholar

29.
Akkaş, M. A., Akyildiz, I. F., & Sokullu, R. (2012). Terahertz channel modeling of underground sensor networks in oil reservoirs. In Global communications conference (GLOBECOM), 2012 IEEE. IEEE.

30.
Akkaş, M. A. (2019). Terahertz wireless data communication. Wireless Networks, 25, 1–11.

Article

Google Scholar

Download references

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Affiliations
Department of Computer Engineering, Bolu Abant Izzet Baysal University, 14280, Bolu, Turkey

Mustafa Alper Akkaş

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Correspondence to Mustafa Alper Akkaş.

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GRAPHENE OXIDE & NANO-ROUTER CIRCUITRY IN COVID VACCINES: UNCOVERING THE TRUE PURPOSE OF THESE MANDATORY TOXIC INJECTIONS

HOME / COVID-19 VACCINES, PCR TESTS & MASKS / GRAPHENE OXIDE & NANO-ROUTER CIRCUITRY IN COVID VACCINES: UNCOVERING THE TRUE PURPOSE OF THESE MANDATORY TOXIC INJECTIONS
Graphene Oxide & Nano-Router Circuitry in Covid Vaccines: Uncovering the True Purpose of These Mandatory Toxic Injections

 

Pattern Identification in Coronavirus Vaccines: Nanorouters 

by Mik AndersenCorona2Inspect
published in Spanish November 2021
rough translation via translation software

 

Since graphene oxide was discovered in coronavirus vaccines, all the findings and discoveries made only confirm its presence (Campra, P. 2021). To date, more than reasonable evidence and indications have also been found for the existence of carbon nanotubes and nano-octopusesmesoporous spherescolloidal nano-robots; objects that should not be part of any vaccine and that are not declared among the components of the same. Additionally, other types of objects have been identified and evidenced in images of blood samples, of people vaccinated with the coronavirus vaccines, specifically micro-swimmersnano-antennas of crystallized graphene and graphene quantum dots, as well, known as GQD.

On this occasion, analyzing one of the images obtained by Dr. Campra, corresponding to a sample of the Pfizer vaccine, see figure 1, it has been discovered, which with great probability, is a nanorouter or part of its circuitry. In the original image, a well-defined drop can be seen in which crystalline structures of a quadrangular or cubic format appear. If you look closely, you can see some marks on these crystals, with a regular pattern, well defined in some cases, but limited by the microscope optics.

na1.jpghttps://truthcomestolight.com/wp-content/uploads/2021/11/na1-300x148.jpg 300w" alt="" width="600" height="295" />Fig. 1. Crystalline formations that show markings of what appear to be circuits. Among these objects, the circuit of what could be a nanorouter has been discovered. Image of a sample of the Pfizer vaccine, obtained by (Campra, P. 2021)

The finding has been possible by isolating each quadrangular crystal, applying a process of rasterizing, focusing and delineating the edges of the image, in order to further pronounce the observed marks. Once this process was completed, a rough draft was drawn with the lines and patterns inscribed on the glass, creating a clean outline of what actually looked like a circuit. The fact of finding parallel and perpendicular lines with a distribution far from the fractal patterns was very striking, which allowed us to automatically infer the possibility that it had been a product of manufacture. For this reason, similar patterns were searched in the scientific literature, which had a similar scheme, similar to the circuit that had just been drawn. The search result was almost immediate, as the pattern of a quantum dot nanorouter was found, as seen in Figure 2.

na2.jpghttps://truthcomestolight.com/wp-content/uploads/2021/11/na2-225x300.jpg 225w" alt="" width="600" height="800" />Fig. 2. Possible quantum dot nanorouter observed in a quadrangular crystal, in an image obtained by the doctor (Campra, P. 2021). In the lower right corner, the quantum dot nanorouter circuit published by (Sardinha, L.H .; Costa, A.M .; Neto, O.P.V .; Vieira, L.F .; Vieira, M.A. 2013) is observed. Note the obvious similarity between the sketch, the shape inscribed in the crystal, and the quantum dot circuit.

This discovery is of fundamental relevance, not only to understand the true purpose and components of the coronavirus vaccines, but also to explain the existence of the phenomenon of MAC addresses, visible through the bluetooth of many mobile devices.

Discovery context

Before proceeding with the explanation of the finding, it is convenient to remember the context in which it is framed, in order to ensure its understanding and subsequent deepening.

In the first place, it should be borne in mind that graphene and its derivatives, graphene oxide (GO) and carbon nanotubes (CNT), are part of the components of vaccines, according to what has already been stated in this blog. The properties of graphene are exceptional from the physical point of view, but also thermodynamic, electronic, mechanical and magnetic. Its characteristics allow its use as a superconductor, electromagnetic wave absorbing material (microwave EM), emitter, signal receiver, quantum antenna, which makes it possible to create advanced electronics on a nano and micrometric scale. Such is the case, that it is the fundamental nanomaterial for the development of nano-biomedicine (Mitragotri, S .; Anderson, DG; Chen, X .; Chow, EK; Ho, D .; Kabanov, AV; Xu, C. 2015 ), nano-communication networks (Kumar, MR 2019), new drug delivery therapies (Yu, J .; Zhang, Y .; Yan, J .; Kahkoska, AR; Gu, Z. 2018) and treatments against cancer (Huang, G .; Huang, H. 2018) and the neurological treatment of neurodegenerative diseases (John, AA; Subramanian, AP; Vellayappan, MV; Balaji, A .; Mohandas, H .; Jaganathan, SK 2015 ). However, all the benefits aside, the scientific literature is very clear regarding the health implications for the human body. It is well known that graphene (G), graphene oxide (GO) and other derivatives such as carbon nanotubes (CNT) are toxic in almost all their forms, causing mutagenesis, cell death (apoptosis), release of free radicals, lung toxicity , bilateral pneumonia, genotoxicity or DNA damage, inflammation, immunosuppression, damage to the nervous system, the circulatory, endocrine, reproductive, and urinary systems, which can cause anaphylactic death and multi-organ dysfunction, see page “Damages and toxicity of graphene oxide” and from “Damage and toxicity of carbon-graphene nanotubes“.

Second, graphene is a radio-modulable nanomaterial, capable of absorbing electromagnetic waves and multiplying radiation, acting as a nano-antenna, or a signal repeater (Chen, Y .; Fu, X .; Liu, L .; Zhang , Y .; Cao, L .; Yuan, D .; Liu, P. 2019). Exposure to electromagnetic radiation can cause exfoliation of the material in smaller particles (Lu, J .; Yeo, PSE; Gan, CK; Wu, P .; Loh, KP 2011), called graphene quantum dots or GQD (Graphene Quantum Dots), whose physical properties and particularities improve due to their even smaller scale, due to the “Quantum Hall” effect, since they act by amplifying electromagnetic signals (Massicotte, M .; Yu, V .; Whiteway, E .; Vatnik , D .; Hilke, M. 2013 | Zhang, X .; Zhou, Q .; Yuan, M .; Liao, B .; Wu, X .; Ying, M. 2020), and with it the emission distance, especially in environments such as the human body (Chopra, N .; Phipott, M ​​.; Alomainy, A .; Abbasi, QH; Qaraqe, K .; Shubair, RM 2016). GQDs can acquire various morphologies, for example hexagonal, triangular, circular or irregular polygon (Tian, ​​P .; Tang, L .; Teng, K.S .; Lau, S.P. 2018).

The superconducting and transducing capacity make graphene one of the most suitable materials to create wireless nanocommunication networks for the administration of nanotechnology in the human body. This approach has been intensively worked by the scientific community, after having found and analyzed the available protocols and specifications, but also the routing systems for the data packets that nano-devices and nano-nodes would generate within the body, in a system complex called CORONA, whose objective is the effective transmission of signals and data on the network, optimizing energy consumption (to the minimum possible), and also reducing failures in the transmission of data packets (Bouchedjera, IA ; Aliouat, Z .; Louail, L. 2020 | Bouchedjera, IA; Louail, L .; Aliouat, Z .; Harous, S. 2020 | Tsioliaridou, A .; Liaskos, C .; Ioannidis, S .; Pitsillides, A . 2015). In this nanocommunications network, a type of signal TS-OOK (Time-Spread On-Off Keying) is used that allows transmitting binary codes of 0 and 1, through short pulses that involve the activation and deactivation of the signal during time intervals very small of a few femtoseconds (Zhang, R .; Yang, K .; Abbasi, QH; Qaraqe, KA; Alomainy, A. 2017 | Vavouris, AK; Dervisi, FD; Papanikolaou, VK; Karagiannidis, GK 2018). Due to the complexity of nanocommunications in the human body, where the nano-nodes of the network are distributed throughout the body, in many cases in motion, due to blood flow, and in others attached to the endothelium to the arterial walls and capillaries or in the tissues of other organs, researchers have required the development of software for the simulation of such conditions, in order to verify and validate the nanocommunication protocols that were being developed (Dhoutaut, D .; Arrabal, T .; Dedu, E. 2018).

On the other hand, the nanocommunications network oriented to the human body (Balghusoon, A.O .; Mahfoudh, S. 2020), has been carefully designed in its topological aspects, conceiving specialized components in the performance of this task. For example, electromagnetic nanocommunication is made up in its most basic layer by nano-nodes that are devices (presumably made of graphene, carbon nanotubes, GQD, among other objects and materials) that have the ability to interact as nanosensors, piezo-electric actuators , and in any case as nano-antennas that propagate the signals to the rest of the nano-nodes. The nano-nodes, find in the nano-routers (also called nano-controllers) the next step in the topology. Its function is to receive the signals emitted by the nano-nodes, process them and send them to the nano-interfaces, which will emit them to the outside of the body with the necessary frequency and scope, since it must overcome the skin barrier without losing clarity in the signal, so that it can be received by a mobile device at a close enough distance (usually a few meters). That mobile device would actually be a smartphone or any other device with an Internet connection, which allows it to act as a “Gateway”. The topology also defines the possibility that the entire nano-node, nanorouter and nano-interface infrastructure is unified in a single nano-device, called pole or metamaterial defined by SDM software (Lee, SJ; Jung, C. ; Choi, K .; Kim, S. 2015). This model simplifies the topology, but increases the size of the device and the complexity of its construction, conceived in several layers of graphene. In any case, regardless of the topology, nanorouters are necessary to route and decode the signals correctly, for their sending, but also for their reception, since they can be designed for a bidirectional service, which de facto implies the ability to receive signals. of commands, orders, operations that interact with the objects of the network.

To electromagnetic nanocommunication, we must add molecular nanocommunication, addressed in the entry on carbon nanotubes and new evidence in vaccine samples. In both publications, the implications of these objects in the field of neuroscience, neuromodulation and neurostimulation are analyzed, since if they are located in the neuronal tissue (something very likely, given the ability to overcome the blood-brain barrier), they can establish connections that bridge the neuronal synapse. This means that they link neurons with different shortcuts, shorter than natural axons (Fabbro, A .; Cellot, G .; Prato, M .; Ballerini, L. 2011). Although this can be used in experimental treatments to mitigate the effects of neurodegenerative diseases, it can also be used to directly interfere with neurons, the secretion of neurotransmitters such as dopamine, the involuntary activation of certain areas of the brain, their neurostimulation or modulation, through electrical impulses, generated from carbon nanotubes (Suzuki, J .; Budiman, H .; Carr, TA; DeBlois, JH 2013 | Balasubramaniam, S .; Boyle, NT; Della-Chiesa, A .; Walsh, F .; Mardinoglu, A .; Botvich, D .; Prina-Mello, A. 2011), as a result of the reception of electromagnetic signals and pulses from the nanocommunications network (Akyildiz, IF; Jornet, JM 2010). It is not necessary to warn about what it means that an external signal, not controlled by the inoculated person, is the one that governs the segregation of neurotransmitters. Take an example to raise awareness; carbon nanotubes housed in neuronal tissue could interfere with the natural functioning of the secretion of neurotransmitters such as dopamine, which is partly responsible for cognitive processes, socialization, the reward system, desire, pleasure, conditioned learning or inhibition (Beyene, AG; Delevich, K .; Del Bonis-O’Donnell, JT; Piekarski, DJ; Lin, WC; Thomas, AW; Landry, MP 2019 | Sun, F .; Zhou, J .; Dai, B .; Qian, T .; Zeng, J .; Li, X .; Li, Y. 2020 | Sun, F .; Zeng, J .; Jing, M .; Zhou, J .; Feng, J .; Owen, SF; Li, Y. 2018 | Patriarchi, T .; Mohebi, A .; Sun, J .; Marley, A .; Liang, R .; Dong, C .; Tian, ​​L. 2020 | Patriarchi, T .; Cho , JR; Merten, K .; Howe, MW; Marley, A .; Xiong, WH; Tian, ​​L. 2018). This means that it could be inferred in the normal behavior patterns of people, their feelings and thoughts, and even force subliminal conditioned learning, without the individual being aware of what is happening. In addition to the properties already mentioned, carbon nanotubes not only open the doors to the wireless interaction of the human brain, they can also receive electrical signals from neurons and propagate them to nanorouters, since they also have the same properties as GQD graphene nano-antennas and quantum dots, as explained in (Demoustier, S .; Minoux, E .; Le Baillif, M .; Charles, M .; Ziaei, A. 2008 | Wang, Y .; Wu, Q .; Shi, W .; He, X .; Sun, X .; Gui, T. 2008 | Da-Costa, MR; Kibis, OV; Portnoi, ME 2009). This means that they can transmit and monitor the neuronal activity of individuals.

For the data packets emitted and received from the nanocommunications network to reach their destination, it is essential that the communication protocol implements in some way the unique identification of the nanodevices (that is, through MAC) and transmits the information to an IP address. default. In this sense, the human body becomes an IoNT server (from the Internet of NanoThings) in which the communication client / server model can be assimilated. The mechanisms, commands or types of request remain to be determined, as well as the exact frequency and type of signal that operates the wireless nanocommunications network that would be installed with each vaccine, although obviously this information must be very confidential, given the possible consequences of biohacking. (Vassiliou, V. 2011) that could happen. In fact, in the work of (Al-Turjman, F. 2020) the problems and circumstances of the security of nanocommunication networks connected to 5G (confidentiality, authentication, privacy, trust, intrusions, repudiation) are linked and additionally, it presents a summary of the operation of electromagnetic communication between nano-nodes, nano-sensors and nano-routers, using graphene antennas and transceivers for their link with data servers, in order to develop Big-data projects. It should be noted that the risks of network hacking are very similar to those that can be perpetrated in any network connected to the Internet (masquerade attack, location tracking, information traps, denial of service, nano-device hijacking, wormhole, MITM broker attack, malware, spam, sybil, spoofing, neurostimulation illusion attack), which means a potential and additional, very serious risk for people inoculated with the hardware of a nanocommunication network.

In this context, it is in which the discovery of the circuits of a nanorouter in the samples of the Pfizer vaccine is found, which is a key piece in all the research that has been carried out and that would confirm the installation of a hardware in the body of inoculated people, without their informed consent, which executes collection and interaction processes that are completely beyond its control.

Nanorouters QCA

The discovered circuit, see figure 3, corresponds to the field of quantum dot cellular automata, also known as QCA (Quantum Cellular Automata), characterized by its nanometric scale and a very low energy consumption, as an alternative for the replacement of technology based on transistors. This is how it is defined by the work of (Sardinha, L.H .; Costa, A.M .; Neto, O.P.V .; Vieira, L.F .; Vieira, M.A. 2013) from which the scheme of said circuit was obtained. The nanorouter referred to by the researchers is characterized by an ultra-low consumption factor, high processing speed (its frequency clock operates in a range of 1-2 THz), which is consistent with the power conditions and data transfer requirements. , in the context of nanocommunication networks for the human body described by (Pierobon, M .; Jornet, JM; Akkari, N .; Almasri, S .; Akyildiz, IF 2014).

na3a.jpghttps://truthcomestolight.com/wp-content/uploads/2021/11/na3a-300x153.jpg 300w" alt="" width="600" height="306" />Fig. 3. Graphene quantum dot circuit in QCA cells. Circuit diagram of (Sardinha, L.H .; Costa, A.M .; Neto, O.P.V .; Vieira, L.F .; Vieira, M.A. 2013) observed in a sample of the Pfizer vaccine.

According to the explanations of the work of (Sardinha, LH; Costa, AM; Neto, OPV; Vieira, LF; Vieira, MA 2013), the concept of quantum dot and quantum dot cell is distinguished, see figure 4. The QCA cell It is made up of four quantum dots whose polarization is variable. This makes it possible to distinguish the binary code of 0 and 1 based on the positive or negative charge of the quantum dots. In the words of the authors it is explained as follows “The basic units of QCA circuits are cells made of quantum dots. A point, in this context, is just a region where an electrical charge can be located or not. A cell QCA has four quantum dots located in the corners. Each cell has two free and moving electrons that can tunnel between the quantum dots. It is assumed that tunneling to the outside of the cell is not allowed due to a high barrier potential”. Extrapolated to graphene quantum dots, known as GQDs, which were identified in blood samples (due to emitted fluorescence), a QCA cell would require four GQDs to compose, which is perfectly consistent with the description given by the researchers. This is also corroborated by (Wang, Z.F .; Liu, F. 2011) in his work entitled “Graphene quantum dots as building blocks for quantum cellular automata”, where the use of graphene to create this type of circuit is confirmed.

na4.jpghttps://truthcomestolight.com/wp-content/uploads/2021/11/na4-300x177.jpg 300w" alt="" width="600" height="353" />Fig. 4. Scheme of a QCA cell made up of four quantum dots (which can be graphene, among other materials). Note the great resemblance to memristors, in fact QCAs and memristors are transistors. (Sardinha, L.H .; Costa, A.M .; Neto, O.P.V .; Vieira, L.F .; Vieira, M.A. 2013 | Strukov, D.B .; Snider, G.S .; Stewart, D.R .; Williams, R.S. 2009)

When the QCA cells are combined, cables and circuits are created, with a wide variety of shapes, schemes and applications, as can be seen in figure 5, where inverters, crossovers and logic gates are observed, also addressed by other authors such as ( Xia, Y .; Qiu, K. 2008). This gives rise to more complex structures, which allow to reproduce the electronic diagrams of the transistors, processors, transceivers, multiplexers, demultiplexers and consequently of any router.

na5.jpghttps://truthcomestolight.com/wp-content/uploads/2021/11/na5-300x290.jpg 300w" alt="" width="600" height="579" />Fig. 5. QCAs can form various types of circuits, for example logic gates, cable crossovers, inverters or cables. (Sardinha, L.H .; Costa, A.M .; Neto, O.P.V .; Vieira, L.F .; Vieira, M.A. 2013)

It is important to explain that QCA cell-based circuits can operate in several superimposed layers, which allows a 3D (three-dimensional) structure to create much more complex and compressed electronics, see figure 6.

na6.jpghttps://truthcomestolight.com/wp-content/uploads/2021/11/na6-300x248.jpg 300w" alt="" width="600" height="495" />Fig. 6. According to (Sardinha, L.H .; Costa, A.M .; Neto, O.P.V .; Vieira, L.F .; Vieira, M.A. 2013) more complex circuits can be built by annexing several superimposed layers. This is identified by the symbol of a circle in the design. There are also three artistic illustrations that represent various levels of circuits (own elaboration).

To develop a nanorouter, according to the researchers (Sardinha, LH; Costa, AM; Neto, OPV; Vieira, LF; Vieira, MA 2013), several circuit structures are needed, specifically, cable crossings (which form logic gates ), demultiplexers (demux) and parallel to serial converters, see figure X. “Demux” are electronic devices capable of receiving a signal at the input QCA (input) and sending it to one of several available output lines. (output), which allows the signal to be routed for further processing. The parallel-to-series converter is a circuit capable of taking several sets of data in an input (input), transporting them through different QCA cables and transmitting them at different instants of time through the output cables (output). This would be very, the component noticed in the vaccine samples, see figure 7.

na7.jpghttps://truthcomestolight.com/wp-content/uploads/2021/11/na7-300x276.jpg 300w" alt="" width="600" height="552" />Fig. 7. Details of the circuit for converting TS-OOK signals in series to a parallel output, confirming one of the typical tasks of a router. (Sardinha, L.H .; Costa, A.M .; Neto, O.P.V .; Vieira, L.F .; Vieira, M.A. 2013)

Another relevant aspect of the work of (Sardinha, LH; Costa, AM; Neto, OPV; Vieira, LF; Vieira, MA 2013) is the demonstration of the operation of the circuit, where the reception of a TS-OOK signal and its conversion to binary code, see figure 8. Once the binary code is obtained, the “demux” circuit is responsible for generating the data packets, according to the structure of the corresponding communications protocol.

na8.jpghttps://truthcomestolight.com/wp-content/uploads/2021/11/na8-300x154.jpg 300w" alt="" width="600" height="307" />Fig. 8. The tests of the demux circuit, already observed in figure 7, provide the proof of how the TS-OOK signals are interpreted and converted to the binary code, to finally generate the data packets of the corresponding nanocommunications protocol. (Sardinha, L.H .; Costa, A.M .; Neto, O.P.V .; Vieira, L.F .; Vieira, M.A. 2013)

Everything explained by (Sardinha, LH; Costa, AM; Neto, OPV; Vieira, LF; Vieira, MA 2013) is also corroborated by (Das, B .; Das, JC; De, D .; Paul, AK 2017) In whose research, QCA circuit designs for demux and nanorouters are observed, with very similar schemes, to those already presented, which confirms the search for solutions for the problem of the transmission and simple processing of signals and data at the nanometric scale, at in order to make nanocommunication networks effective.

Finally, although it can already be deduced from the nature, characteristics and properties of QCA cell circuits, the concept of clock speed must be highlighted. In fact, interesting is the ability of these electronic components to operate almost autonomously, without the need for a dedicated processor. This is because the QCA cell cables can measure the transfer time of the signals between the different cells, in what is called “clock zones”, see figure 9 and the following investigations (Sadeghi, M .; Navi, K .; Dolatshahi, M. 2020 | Laajimi, R .; Niu, M. 2018 | Reis, DA; Torres, FS 2016 | Mohammadyan, S .; Angizi, S .; Navi, K. (2015). This effect allows the transmission of signals through the circuit, but it also allows creating a clock frequency, which is its own process speed. If this concept is joined, the use of superconducting materials such as graphene and more specifically graphene quantum dots Then very high processing speeds can be achieved.

na9.jpghttps://truthcomestolight.com/wp-content/uploads/2021/11/na9-215x300.jpg 215w" alt="" width="600" height="837" />Fig. 9. The nanorouter does not require an independent processor, because the QCA cells organized in the circuit cables already perform this function due to the superconducting and polarization properties of the quantum dots, which allows to infer a clock speed by phases or zones. circuit physics. (Sardinha, L.H .; Costa, A.M .; Neto, O.P.V .; Vieira, L.F .; Vieira, M.A. 2013 | Sadeghi, M .; Navi, K .; Dolatshahi, M. 2020)
Circuit self-assembly

Although it seems impossible, the self-assembly of circuits is a possibility to consider in the hypothesis that has been explained. According to (Huang, J .; Momenzadeh, M .; Lombardi, F. 2007) “Recent developments in QCA manufacturing (involving molecular implementations) have substantially changed the nature of processing. At very small feature sizes, it is anticipated self-assembly or large-scale cell deposition on isolated substrates will be used. In these implementations, QCA cells (each composed of two dipoles) are deposited in parallel V-shaped tracks. QCA cells are arranged in a dense pattern and the computation occurs between adjacent cells. These fabrication techniques are well suited for molecular implementation. ” However, there are also other methods, such as DNA nanopatterns (Hu, W .; Sarveswaran, K .; Lieberman, M .; Bernstein, GH 2005), with which a template is created for the alignment of the quantum dots of graphene, forming the QCA cells, thereby generating the aforementioned circuitry, see figure 10.

na10.jpghttps://truthcomestolight.com/wp-content/uploads/2021/11/na10-247x300.jpg 247w" alt="" width="600" height="730" />Fig. 10. Self-assembly of a circuit with quantum dots from a DNA pattern. The lines of the circuit cables are very similar to those observed in the vaccine sample, see figure 2 and 3. (Hu, W .; Sarveswaran, K .; Lieberman, M .; Bernstein, G.H. 2005)

According to (Hu, W .; Sarveswaran, K .; Lieberman, M .; Bernstein, GH 2005) “Four-tile DNA rafts have been successfully synthesized and characterized by the gel electrophoresis method in our previous work” according to the work of (Sarveswaran, K. 2004). This fits with the very possible existence of a gel / hydrogel in the vaccine composition, after the doctor’s micro-Raman analysis (Campra, P. 2021) in which peaks with values ​​close to 1450 were obtained, which could correspond to PVA, PQT-12, polyolefin, polyacrylamide or polypyrrole, all of them components recognized in the scientific literature as gels and derivatives. On the other hand, it explicitly alludes to the electrophoresis method, or what is the same, the electrical polarization process that causes teslaphoresis, on carbon nanotubes, graphene, quantum dots and other semiconductors, as described (Bornhoeft, LR; Castillo, AC; Smalley, PR; Kittrell, C .; James, DK; Brinson, BE; Cherukuri, P. 2016) in his research. This would confirm that teslaphoresis plays a fundamental role in the composition of circuits, along with DNA patterns. If this is confirmed, it would mean that the circuits could self-assemble in the presence of electric fields or even the reception of electromagnetic waves (microwave EM). The study by (Pillers, M .; Goss, V .; Lieberman, M. 2014) also confirms the construction of nanostructures and CQA using in this case graphene, graphene oxide (GO), electrophoresis and gel, causing controlled deposition in the areas indicated by the DNA pattern, reproducing results similar to those presented in the study by Hu and Sarveswaran, thus making it possible to create the electronic circuits already mentioned, see figure 11.

na11.jpghttps://truthcomestolight.com/wp-content/uploads/2021/11/na11-300x220.jpg 300w" alt="" width="600" height="439" />Fig. 11. Advances in the field of self-assembly of quantum dots and QCA cells can be observed in the scientific literature using the DNA template method to mark the order of construction and electrophoresis to initiate or trigger the process in the materials of the solution. (Pillers, M .; Goss, V .; Lieberman, M. 2014)
Plasmonic nano-emitters

Another issue that requires an explanation in the discovery of the circuit of a nanorouter, in the vaccine sample, is its location in what appears to be a quadrangular crystal. Although it could be thought that it is a randomly generated form, the bibliographic review reveals and justifies this type of form that serves as a framework for this type of circuit. In reality it is a “plasmonic nano-emitter”, in other words, it would correspond to a cubic-shaped nano-antenna (single crystal) of variable size on the nano-micrometric scale, which can emit, receive or repeat signals. This is possible through the plasmon activation property of its surface (that of the nanoemitter cube) that is locally excited to generate an oscillatory signal, as explained (Ge, D .; Marguet, S .; Issa, A .; Jradi, S .; Nguyen, TH; Nahra, M .; Bachelot, R. 2020), see figure 12. This agrees with the type of TS-OOK signals, which are transmitted through the intra-body nanocommunication network, being a requirement indispensable for a nano-router, to have a method to capture them. In other words, the crystalline cube acts as a transceiver for the nanorouter, due to its special properties, derived from the physics of the plasmon. This is corroborated when the scientific literature on electromagnetic nano-networks for the human body is consulted (Balghusoon, AO; Mahfoudh, S. 2020), the MAC protocols applied to the case (Jornet, JM; Pujol, JC; Pareta, JS 2012 ), the methods for the debugging of errors in the signals (Jornet, JM; Pierobon, M .; Akyildiz, IF 2008), or the modulation of pulses in femtoseconds in the terahertz band for nano-communication networks (Jornet, JM; Akyildiz, IF 2014), the parameterization of nano-networks for their perpetual operation (Yao, XW; Wang, WL; Yang, SH 2015), the performance in the modulation of wireless signals for nano-networks (Zarepour, E .; Hassan, M .; Chou, CT; Bayat, S. 2015). In all cases, nano-transceivers are essential to be able to receive or emit a TS-OOK signal.

na12.jpghttps://truthcomestolight.com/wp-content/uploads/2021/11/na12-300x202.jpg 300w" alt="" width="600" height="404" />Fig. 12. Nano-micrometric scale crystals can play the role of an antenna or a transceiver, which makes it possible to imagine that finding the circuit in a quadrangular structure is not the product of chance. (Ge, D .; Marguet, S .; Issa, A .; Jradi, S .; Nguyen, T.H .; Nahra, M .; Bachelot, R. 2020)

Plasmonic nanoemitters can acquire a cube shape, which would be the case observed in the vaccine sample, but also spherical and discoidal shape, being able to be self-assembled, to form larger nano-microstructures (Devaraj, V .; Lee, JM; Kim , YJ; Jeong, H .; Oh, JW 2021). Among the materials with which this plasmonic nano-emitter could be produced are gold, silver, perovskites and graphene, see (Oh, DK; Jeong, H .; Kim, J .; Kim, Y .; Kim, I .; Ok, JG; Rho, J. 2021 | Hamedi, HR; Paspalakis, E .; Yannopapas, V. 2021 | Gritsienko, AV; Kurochkin, NS; Lega, PV; Orlov, AP; Ilin, AS; Eliseev, SP; Vitukhnovsky , AG 2021 | Pierini, S. 2021), although it is likely that many others can be used.

CAM and TCAM memory for MAC and IP

If the presence of nanorouters in vaccines is considered, the hypothesis of the existence of one or more MAC addresses (fixed or dynamic) could be confirmed, which could be emitted from vaccinated people or through some other intermediary device (for example a mobile phone ). This approach is in line with what has already been explained and evidenced in this publication, but also according to scientific publications on nano-communication networks for the human body. According to (Abadal, S .; Liaskos, C .; Tsioliaridou, A .; Ioannidis, S .; Pitsillides, A .; Solé-Pareta, J .; Cabellos-Aparicio, A. 2017) these MAC addresses allow the nano- network can transmit and receive data, because the individual has a unique identifier that allows him to access the medium, this is the Internet. In this way, the nano-router can receive the signals corresponding to the data from the nano-sensors and nano-nodes of the nano-network to transmit them to the outside of the body, as long as there is a mobile device in the vicinity, which serves gateway to the Internet. Therefore, the hypothesis that MAC addresses of vaccinated people can be observed (through bluetooth signal tracking applications), when there is some type of interaction with the mobile media that act as a link. This does not mean that there is permanent communication, due to the need to save and optimize energy consumption (Mohrehkesh, S .; Weigle, MC 2014 | Mohrehkesh, S .; Weigle, MC; Das, SK 2015), which could explain intermittence in communications, periods of connection and inactivity.

The novelty in the field of MAC addresses, which comes together with the QCA circuits, with which nanorouters can be developed, is that memory circuits can also be created. The same researchers (Sardinha, LH; Silva, DS; Vieira, MA; Vieira, LF; Neto, OPV 2015) developed a new type of CAM memory that “unlike random access memory (RAM), which returns data which are stored at the given address. CAM, however, receives the data as input and returns where the data can be found. CAM is useful for many applications that need fast searches, such as Hought transforms, Huffman encoding, Lempel-compression. Ziv and network switches to map MAC addresses to IP addresses and vice versa. CAM is most useful for creating tables that look for exact matches, such as MAC address tables. ” This statement was extracted and copied verbatim to highlight that QCA circuits are the answer to the storage and management of MAC addresses for data transmission in nano-networks, which would confirm that vaccines are, among other things, a means of installing hardware for the control, modulation and monitoring of people.

na13.jpghttps://truthcomestolight.com/wp-content/uploads/2021/11/na13-296x300.jpg 296w" alt="" width="600" height="608" />Fig. 13. Memory circuits for the storage of MAC and IP addresses made with the same QCA technology of the nanorouter observed in the Pfizer vaccine samples. (Sardinha, L.H .; Silva, D.S .; Vieira, M.A .; Vieira, L.F .; Neto, O.P.V. 2015)

Additionally, (Sardinha, LH; Silva, DS; Vieira, MA; Vieira, LF; Neto, OPV 2015) also developed the TCAM memory, which is a special type of CAM memory that would be useful to “create tables to search for longer matches such as IP routing tables organized by IP prefixes. To reduce latency and make communication faster, routers use TCAM. ” This statement clearly affects its use in nano-routers in order to be able to transmit the data obtained in the nano-network to a specific recipient server accessible on the Internet. In other words, the data collected by the nano-network should be stored / registered in a database, of which the recipient of the vaccine would not have knowledge of its existence, of which it was not informed, and in the It is unknown what information is used.

 

Bibliography

  1. Akyildiz, I.F.; Jornet, J.M. (2010). Redes de nanosensores inalámbricos electromagnéticos = Electromagnetic wireless nanosensor networks. Nano Communication Networks, 1(1), pp. 3-19. https://doi.org/10.1016/j.nancom.2010.04.001
  2. Al-Turjman, F. (2020). Inteligencia y seguridad en un gran IoNT orientado a 5G: descripción general = Intelligence and security in big 5G-oriented IoNT: An overview. Future Generation Computer Systems, 102, pp. 357-368. https://doi.org/10.1016/j.future.2019.08.009
  3. Balasubramaniam, S.; Boyle, N.T.; Della-Chiesa, A.; Walsh, F.; Mardinoglu, A.; Botvich, D.; Prina-Mello, A. (2011). Desarrollo de redes neuronales artificiales para la comunicación molecular = Development of artificial neuronal networks for molecular communication. Nano Communication Networks, 2(2-3), pp. 150-160. https://doi.org/10.1016/j.nancom.2011.05.004
  4. Balghusoon, A.O.; Mahfoudh, S. (2020). Protocolos de enrutamiento para redes inalámbricas de nanosensores e Internet de las nano cosas: una revisión completa = Routing Protocols for Wireless Nanosensor Networks and Internet of Nano Things: A Comprehensive Survey. IEEE Access, 8, pp. 200724-200748. https://doi.org/10.1109/ACCESS.2020.3035646
  5. Beyene, A.G.; Delevich, K.; Del Bonis-O’Donnell, J.T.; Piekarski, D.J.; Lin, W.C.; Thomas, A.W.; Landry, M.P. (2019). Obtención de imágenes de la liberación de dopamina estriatal utilizando un nanosensor de catecolamina fluorescente de infrarrojo cercano no codificado genéticamente = Imaging striatal dopamine release using a nongenetically encoded near infrared fluorescent catecholamine nanosensor. Science advances, 5(7), eaaw3108. https://doi.org/10.1126/sciadv.aaw3108
  6. Bornhoeft, L.R.; Castillo, A.C.; Smalley, P.R.; Kittrell, C.; James, D.K.; Brinson, B.E.; Cherukuri, P. (2016). Teslaforesis de nanotubos de carbono = Teslaphoresis of carbon nanotubes. ACS nano, 10(4), pp. 4873-4881. https://doi.org/10.1021/acsnano.6b02313
  7. Bouchedjera, I.A.; Aliouat, Z.; Louail, L. (2020). EECORONA: Sistema de Coordinación y Enrutamiento de Eficiencia Energética para Nanoredes = EECORONA: Energy Efficiency Coordinate and Routing System for Nanonetworks. En: International Symposium on Modelling and Implementation of Complex Systems. Cham. pp. 18-32. https://doi.org/10.1007/978-3-030-58861-8_2
  8. Bouchedjera, I.A.; Louail, L.; Aliouat, Z.; Harous, S. (2020). DCCORONA: Sistema distribuido de enrutamiento y coordenadas basado en clústeres para nanorredes = DCCORONA: Distributed Cluster-based Coordinate and Routing System for Nanonetworks. En: 2020 11th IEEE Annual Ubiquitous Computing, Electronics & Mobile Communication Conference (UEMCON). IEEE. pp. 0939-0945. https://doi.org/10.1109/UEMCON51285.2020.9298084
  9. Campra, P. (2021a). Observaciones de posible microbiótica en vacunas COVID RNAm Version 1. [Observations of possible microbiotics in COVID mRNA vaccineshttp://dx.doi.org/10.13140/RG.2.2.13875.55840
  10. Campra, P. (2021b). Detección de grafeno en vacunas COVID19 por espectroscopía Micro-RAMAN. https://www.researchgate.net/publication/355684360_Deteccion_de_grafeno_en_vacunas_COVID19_por_espectroscopia_Micro-RAMAN
  11. Campra, P. (2021c). MICROSTRUCTURES IN COVID VACCINES: ¿inorganic crystals or Wireless Nanosensors Network?https://www.researchgate.net/publication/356507702_MICROSTRUCTURES_IN_COVID_VACCINES_inorganic_crystals_or_Wireless_Nanosensors_Network
  12. Chopra, N.; Phipott, M.; Alomainy, A.; Abbasi, Q.H.; Qaraqe, K.; Shubair, R.M. (2016). THz time domain characterization of human skin tissue for nano-electromagnetic communication. En: 2016 16th Mediterranean Microwave Symposium (MMS) (pp. 1-3). IEEE.  https://doi.org/10.1109/MMS.2016.7803787
  13. Da-Costa, M.R.; Kibis, O.V.; Portnoi, M.E. (2009). Nanotubos de carbono como base para emisores y detectores de terahercios = Carbon nanotubes as a basis for terahertz emitters and detectors. Microelectronics Journal, 40(4-5), pp. 776-778. https://doi.org/10.1016/j.mejo.2008.11.016
  14. Das, B.; Das, J.C.; De, D.; Paul, A.K. (2017). Diseño de nanoenrutador para nanocomunicación en autómatas celulares cuánticos de una sola capa =Nano-Router Design for Nano-Communication in Single Layer Quantum Cellular Automata. En: International Conference on Computational Intelligence, Communications, and Business Analytics (pp. 121-133). Springer, Singapore. https://doi.org/10.1007/978-981-10-6430-2_11
  15. Demoustier, S.; Minoux, E.; Le Baillif, M.; Charles, M.; Ziaei, A. (2008). Revisión de dos aplicaciones de microondas de nanotubos de carbono: nano antenas y nanointerruptores = Revue d’applications des nanotubes de carbone aux micro-ondes: nano-antennes et nano-commutateurs = Review of two microwave applications of carbon nanotubes: nano-antennas and nano-switches. Comptes Rendus Physique, 9(1), pp. 53-66. https://doi.org/10.1016/j.crhy.2008.01.001
  16. Devaraj, V.; Lee, J.M.; Kim, Y.J.; Jeong, H.; Oh, J.W. (2021). [Pre-print]. Diseño de nanoestructuras plasmónicas autoensambladas eficientes a partir de nanopartículas de forma esférica = Designing an Efficient Self-Assembled Plasmonic Nanostructures from Spherical Shaped Nanoparticles. International Journal of Molecular Science.   https://www.preprints.org/manuscript/202109.0225/v1
  17. Dhoutaut, D.; Arrabal, T.; Dedu, E. (2018). Bit Simulator, un simulador de nanorredes electromagnéticas = Bit simulator, an electromagnetic nanonetworks simulator. En: Proceedings of the 5th ACM International Conference on Nanoscale Computing and Communication (pp. 1-6). https://doi.org/10.1145/3233188.3233205
  18. Fabbro, A.; Cellot, G.; Prato, M.; Ballerini, L. (2011). Interconexión de neuronas con nanotubos de carbono: (re) ingeniería de la señalización neuronal = Interfacing neurons with carbon nanotubes: (re) engineering neuronal signaling. Progress in brain research, 194, pp. 241-252. https://doi.org/10.1016/B978-0-444-53815-4.00003-0
  19. Ferjani, H.; Touati, H. (2019). Comunicación de datos en nano-redes electromagnéticas para aplicaciones sanitarias = Data communication in electromagnetic nano-networks for healthcare applications. En: International Conference on Mobile, Secure, and Programmable Networking (pp. 140-152). Springer, Cham. https://doi.org/10.1007/978-3-030-22885-9_13
  20. Ge, D.; Marguet, S.; Issa, A.; Jradi, S.; Nguyen, T.H.; Nahra, M.; Bachelot, R. (2020). Nanoemisores plasmónicos híbridos con posicionamiento controlado de un único emisor cuántico en el campo de excitación local = Hybrid plasmonic nano-emitters with controlled single quantum emitter positioning on the local excitation field. Nature communications, 11(1), pp1-11. https://doi.org/10.1038/s41467-020-17248-8
  21. Gritsienko, A.V.; Kurochkin, N.S.; Lega, P.V.; Orlov, A.P.; Ilin, A.S.; Eliseev, S.P.; Vitukhnovsky, A.G. (2021). Propiedades ópticas de la nueva nanoantena híbrida en cavidad submicrónica = Optical properties of new hybrid nanoantenna in submicron cavity. En: Journal of Physics: Conference Series (Vol. 2015, No. 1, p. 012052). IOP Publishing. https://doi.org/10.1088/1742-6596/2015/1/012052
  22. Hamedi, H.R.; Paspalakis, E.; Yannopapas, V. (2021). Control efectivo de la biestabilidad óptica de un emisor cuántico de tres niveles cerca de una metauperficie plasmónica nanoestructurada = Effective Control of the Optical Bistability of a Three-Level Quantum Emitter near a Nanostructured Plasmonic Metasurface. En: Photonics (Vol. 8, No. 7, p. 285). Multidisciplinary Digital Publishing Institute. https://doi.org/10.3390/photonics8070285
  23. Hu, W.; Sarveswaran, K.; Lieberman, M.; Bernstein, G.H. (2005). Litografía por haz de electrones de alta resolución y nanopatrones de ADN para QCA molecular. IEEE Transactions on Nanotechnology, 4(3), pp. 312-316. https://doi.org/10.1109/TNANO.2005.847034
  24. Huang, G.; Huang, H. (2018). Aplicación de dextrano como portadores de fármacos a nanoescala = Application of dextran as nanoscale drug carriers. Nanomedicine, 13(24), pp. 3149-3158. https://doi.org/10.2217/nnm-2018-0331
  25. Huang, J.; Momenzadeh, M.; Lombardi, F. (2007). Diseño de circuitos secuenciales por autómatas celulares de puntos cuánticos = Design of sequential circuits by quantum-dot cellular automata. Microelectronics Journal, 38(4-5), pp. 525-537. https://doi.org/10.1016/j.mejo.2007.03.013
  26. Huang, J.; Xie, G.; Kuang, R.; Deng, F.; Zhang, Y. (2021). Circuito de código Hamming basado en QCA para redes de nanocomunicación = QCA-based Hamming code circuit for nano communication network. Microprocessors and Microsystems, 84, 104237. https://doi.org/10.1016/j.micpro.2021.104237
  27. John, A.A.; Subramanian, A.P.; Vellayappan, M.V.; Balaji, A.; Mohandas, H.; Jaganathan, S.K. (2015). Los nanotubos de carbono y el grafeno como candidatos emergentes en la neurorregeneración y la administración de neurofármacos = Carbon nanotubes and graphene as emerging candidates in neuroregeneration and neurodrug delivery. International journal of nanomedicine, 10, 4267. https://dx.doi.org/10.2147%2FIJN.S83777
  28. Jornet, J.M.; Akyildiz, I.F. (2014). Modulación basada en pulsos de femtosegundo largo para comunicación en banda de terahercios en nanorredes = Femtosecond-long pulse-based modulation for terahertz band communication in nanonetworks. IEEE Transactions on Communications, 62(5), pp. 1742-1754. https://doi.org/10.1109/TCOMM.2014.033014.130403
  29. Jornet, J.M.; Pierobon, M.; Akyildiz, I.F. (2008). Redes de nanocomunicación = Nano Communication Networks. Networks (Elsevier), 52, pp. 2260-2279. http://dx.doi.org/10.1016/j.nancom.2014.04.001
  30. Jornet, J.M.; Pujol, J.C.; Pareta, J.S. (2012). PHLAME: un protocolo MAC consciente de la capa física para nanorredes electromagnéticas en la banda de terahercios = Phlame: A physical layer aware mac protocol for electromagnetic nanonetworks in the terahertz band. Nano Communication Networks, 3(1), pp. 74-81. https://doi.org/10.1016/j.nancom.2012.01.006
  31. Kumar, M.R. (2019). Una nano-antena compacta basada en grafeno para la comunicación en nano-redes = A Compact Graphene Based Nano-Antenna for Communication in Nano-Network. Journal of the Institute of Electronics and Computer, 1(1), pp. 17-27. https://doi.org/10.33969/JIEC.2019.11003
  32. Laajimi, R.; Niu, M. (2018). Nanoarquitectura de autómatas celulares de puntos cuánticos (QCA) que utilizan áreas pequeñas para circuitos digitales = Nanoarchitecture of Quantum-Dot Cellular Automata (QCA) Using Small Area for Digital Circuits. Advanced Electronics Circuits–Principles, Architectures and Applications on Emerging Technologies, pp. 67-84. https://www.intechopen.com/chapters/58619
  33. Lee, S.J.; Jung, C.; Choi, K.; Kim, S. (2015). Diseño de redes inalámbricas de nanosensores para aplicaciones intracuerpo = Design of wireless nanosensor networks for intrabody application. International Journal of Distributed Sensor Networks, 11(7), 176761. https://doi.org/10.1155/2015/176761
  34. Lu, J.; Yeo, P.S.E.; Gan, C.K.; Wu, P.; Loh, K.P. (2011). Transformando moléculas C60 en puntos cuánticos de grafeno = Transforming C60 molecules into graphene quantum dots. Nature nanotechnology, 6(4), pp. 247-252. https://doi.org/10.1038/nnano.2011.30
  35. Massicotte, M.; Yu, V.; Whiteway, E.; Vatnik, D.; Hilke, M. (2013). Efecto Hall cuántico en el grafeno fractal: crecimiento y propiedades de los grafloconos = Quantum Hall effect in fractal graphene: growth and properties of graphlocons. Nanotechnology, 24(32), 325601. https://doi.org/10.1088/0957-4484/24/32/325601
  36. Mitragotri, S.; Anderson, D.G.; Chen, X.; Chow, E.K.; Ho, D.; Kabanov, A.V.; Xu, C. (2015). Acelerando la traducción de nanomateriales en biomedicina = Accelerating the translation of nanomaterials in biomedicine. ACS nano, 9(7), pp. 6644-6654. https://doi.org/10.1021/acsnano.5b03569
  37. Mohammadyan, S.; Angizi, S.; Navi, K. (2015). Nueva celda sumadora completa QCA de una sola capa basada en el modelo de retroalimentación = New fully single layer QCA full-adder cell based on feedback model. International Journal of High Performance Systems Architecture, 5(4), pp. 202-208. https://doi.org/10.1504/IJHPSA.2015.072847
  38. Mohrehkesh, S.; Weigle, M.C. (2014). Optimización del consumo de energía en nanorredes de banda de terahercios = Optimizing energy consumption in terahertz band nanonetworks. IEEE Journal on Selected Areas in Communications, 32(12), pp. 2432-2441. https://doi.org/10.1109/JSAC.2014.2367668
  39. Mohrehkesh, S.; Weigle, M.C.; Das, S.K. (2015). DRIH-MAC: una MAC de recolección iniciada por un receptor distribuido para nanorredes = DRIH-MAC: A distributed receiver-initiated harvesting-aware MAC for nanonetworks. IEEE Transactions on Molecular, Biological and Multi-Scale Communications, 1(1), pp. 97-110. https://doi.org/10.1109/TMBMC.2015.2465519
  40. Oh, D.K.; Jeong, H.; Kim, J.; Kim, Y.; Kim, I.; Ok, J.G.; Rho, J. (2021). Enfoques de nanofabricación de arriba hacia abajo hacia estructuras de escala nanométrica de un solo dígito = Top-down nanofabrication approaches toward single-digit-nanometer scale structures. Journal of Mechanical Science and Technology, pp. 1-23. https://doi.org/10.1007/s12206-021-0243-7
  41. Patriarchi, T.; Cho, J.R.; Merten, K.; Howe, M.W.; Marley, A.; Xiong, W.H.; Tian, L. (2018). Imágenes neuronales ultrarrápidas de la dinámica de la dopamina con sensores codificados genéticamente diseñados = Ultrafast neuronal imaging of dopamine dynamics with designed genetically encoded sensors. Science, 360(6396).  https://doi.org/10.1126/science.aat4422
  42. Patriarchi, T.; Mohebi, A.; Sun, J.; Marley, A.; Liang, R.; Dong, C.; Tian, L. (2020). Una paleta ampliada de sensores de dopamina para imágenes multiplex in vivo = An expanded palette of dopamine sensors for multiplex imaging in vivo. Nature methods, 17(11), pp. 1147-1155. https://doi.org/10.1038/s41592-020-0936-3
  43. Pierini, S. (2021). [Preprint]. Estudio experimental de nanocristales de perovskita como fuentes de fotón único para fotónica cuántica integrada = Experimental study of perovskite nanocrystals as single photon sources for integrated quantum photonics. Arxiv. https://arxiv.org/pdf/2105.14245.pdf
  44. Pierobon, M.; Jornet, J.M.; Akkari, N.; Almasri, S.; Akyildiz, I.F. (2014). Un marco de enrutamiento para redes de nanosensores inalámbricos de recolección de energía en la banda de terahercios = A routing framework for energy harvesting wireless nanosensor networks in the Terahertz Band. Wireless networks, 20(5), pp. 1169-1183. https://doi.org/10.1007/s11276-013-0665-y
  45. Pillers, M.; Goss, V.; Lieberman, M. (2014). Litografía por haz de electrones y despegue molecular para la fijación dirigida de nanoestructuras de ADN sobre silicio: de arriba hacia abajo se encuentra con de abajo hacia arriba = Electron-beam lithography and molecular liftoff for directed attachment of DNA nanostructures on silicon: Top-down meets bottom-up. Accounts of chemical research, 47(6), pp. 1759-1767. https://doi.org/10.1021/ar500001e
  46. Reis, D.A.; Torres, F.S. (2016). Un simulador de defectos para el análisis de robustez de circuitos QCA = A Defects Simulator for Robustness Analysis of QCA Circuits. Journal of Integrated Circuits and Systems, 11(2), pp. 86-96. https://doi.org/10.29292/jics.v11i2.433
  47. Sadeghi, M.; Navi, K.; Dolatshahi, M. (2020). Nuevos diseños eficientes de sumador completo y restador completo en autómatas celulares cuánticos = Novel efficient full adder and full subtractor designs in quantum cellular automata. The Journal of Supercomputing, 76(3), pp. 2191-2205. https://doi.org/10.1007/s11227-019-03073-4
  48. Sardinha, L.H.; Costa, A.M.; Neto, O.P.V.; Vieira, L.F.; Vieira, M.A. (2013). NanoRouter: un diseño de autómatas celulares de puntos cuánticos = Nanorouter: a quantum-dot cellular automata design. IEEE Journal on Selected Areas in Communications, 31(12), pp. 825-834. https://doi.org/10.1109/JSAC.2013.SUP2.12130015
  49. Sardinha, L.H.; Silva, D.S.; Vieira, M.A.; Vieira, L.F.; Neto, O.P.V. (2015). TCAM / CAM-QCA: Memoria direccionable de contenido (ternario) utilizando autómatas celulares de punto cuántico = Tcam/cam-qca:(ternary) content addressable memory using quantum-dot cellular automata. Microelectronics Journal, 46(7), pp. 563-571. https://doi.org/10.1016/j.mejo.2015.03.020
  50. Sarveswaran, K. (2004). [Documento reservado]. Self-assembly and lithographic patterning of DNA raftsDARPA Conf. Foundations of Nanoscience: Self-Assembled Architectures and Devices, Snowbird, UT. [Enlace no disponible]
  51. Strukov, D.B.; Snider, G.S.; Stewart, D.R.; Williams, R.S. (2009). El memristor perdido,  encontrado The missing memristor found. Nature, 459(7250), 1154. https://doi.org/10.1038/nature06932
  52. Sun, F.; Zhou, J.; Dai, B.; Qian, T.; Zeng, J.; Li, X.; Li, Y. (2020). Sensores GRAB de próxima generación para monitorear la actividad dopaminérgica in vivo = Next-generation GRAB sensors for monitoring dopaminergic activity in vivo. Nature methods, 17(11), pp. 1156-1166.  https://doi.org/10.1038/s41592-020-00981-9
  53. Suzuki, J.; Budiman, H.; Carr, T.A.; DeBlois, J.H. (2013). Un marco de simulación para la comunicación molecular basada en neuronas = A simulation framework for neuron-based molecular communication. Procedia Computer Science, 24, pp. 103-113. https://doi.org/10.1016/j.procs.2013.10.032
  54. Tsioliaridou, A.; Liaskos, C.; Ioannidis, S.; Pitsillides, A. (2015). CORONA: un sistema de coordenadas y enrutamiento para nanorredes = CORONA: A Coordinate and Routing system for Nanonetworks. En: Proceedings of the second annual international conference on nanoscale computing and communication. pp. 1-6. https://doi.org/10.1145/2800795.2800809 | https://sci-hub.mksa.top/10.1145/2800795.2800809
  55. Vassiliou, V. (2011). Problemas de seguridad en redes de comunicación a nanoescala = Security issues in nanoscale communication networks. 3rd NaNoNetworking Summit, pp. 1-53. http://www.n3cat.upc.edu/n3summit2011/presentations/Security_Issues_in_Nanoscale_Communication_Networks.pdf
  56. Vavouris, A.K.; Dervisi, F.D.; Papanikolaou, V.K.; Karagiannidis, G.K. (2018). Un esquema de modulación energéticamente eficiente para nanocomunicaciones centradas en el cuerpo en la banda THz = An energy efficient modulation scheme for body-centric nano-communications in the THz band. En: 2018 7th International Conference on Modern Circuits and Systems Technologies (MOCAST) (pp. 1-4). IEEE. https://doi.org/10.1109/MOCAST.2018.8376563
  57. Wang, Z.F.; Liu, F. (2011). Puntos de cuánticos de grafeno como bloques de construcción para autómatas celulares cuánticos = Nanopatterned graphene quantum dots as building blocks for quantum cellular automata. Nanoscale, 3(10), pp. 4201-4205. https://doi.org/10.1039/C1NR10489F
  58. Wang, W.L.; Wang, C.C.; Yao, X.W. (2019). Protocolo MAC basado en autoasignación de ranuras para nano-redes de recolección de energía = Slot self-allocation based mac protocol for energy harvesting nano-networks. Sensors, 19(21), 4646. https://doi.org/10.3390/s19214646
  59. Wang, Y.; Wu, Q.; Shi, W.; He, X.; Sun, X.; Gui, T. (2008). Propiedades de radiación de la antena de nanotubos de carbono en el rango de terahercios / infrarrojos = Radiation properties of carbon nanotubes antenna at terahertz/infrared range. International Journal of Infrared and Millimeter Waves, 29(1), pp. 35-42. https://doi.org/10.1007/s10762-007-9306-9
  60. Xia, Y.; Qiu, K. (2008). Diseño y aplicación de puerta lógica universal basada en autómatas celulares de puntos cuánticos = Design and application of universal logic gate based on quantum-dot cellular automata. En: 2008 11th IEEE International Conference on Communication Technology (pp. 335-338). IEEE. https://doi.org/10.1109/ICCT.2008.4716260 | https://sci-hub.mksa.top/10.1109/ICCT.2008.4716260
  61. Yao, X.W.; Wang, W.L.; Yang, S.H. (2015). Optimización de parámetros conjuntos para redes perpetuas y capacidad máxima de red = Joint parameter optimization for perpetual nanonetworks and maximum network capacity. IEEE Transactions on Molecular, Biological and Multi-Scale Communications, 1(4), pp. 321-330. https://doi.org/10.1109/TMBMC.2016.2564967
  62. Yu, J.; Zhang, Y.; Yan, J.; Kahkoska, A.R.; Gu, Z. (2018). Advances in bioresponsive closed-loop drug delivery systems. International journal of pharmaceutics, 544(2), pp. 350-357. https://doi.org/10.1016/j.ijpharm.2017.11.064
  63. Zarepour, E.; Hassan, M.; Chou, C.T.; Bayat, S. (2015). Análisis de rendimiento de esquemas de modulación sin portadora para redes inalámbricas de nanosensores = Performance analysis of carrier-less modulation schemes for wireless nanosensor networks. En: 2015 IEEE 15th International Conference on Nanotechnology (IEEE-NANO) (pp. 45-50). IEEE. https://doi.org/10.1109/NANO.2015.7388653
  64. Zhang, R.; Yang, K.; Abbasi, Q.H.; Qaraqe, K.A.; Alomainy, A. (2017). Caracterización analítica de la nanored In-Vivo de Terahercios en presencia de interferencia basada en el esquema de comunicación TS-OOK = Analytical characterisation of the terahertz in-vivo nano-network in the presence of interference based on TS-OOK communication scheme. IEEE Access, 5, pp. 10172-10181. https://doi.org/10.1109/ACCESS.2017.2713459
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YOUR BRAIN IS NOW CONNECTED TO A CENTRALIZED CONTROL SYSTEM BY WIRELESS OR WIFI MEANS AND YOU ARE NOW UNDER PARTIAL EXTERNAL WIRELESS CONTROL. WHO IS DOING THIS TO YOU AND THE SOLUTION.
Vaccines have been found to contain carbon nano tubes, graphene quantum dots which are also known as GQDs,
hydrogel swimmers, fractal graphene nano antennas, nano routers and nano interface also known as CODEC.
Nano-network topology is as follows:-
1 Nano-nodes (GQDs, Hydrogel swimmers, Nanotubes, Fibres)
2 Nano-sensors (Nanotube Cricuits, graphene nanosheets)
3 Nano-controllers (QCA nanorouter circuits)
4 Nano-interface (QCA nanoCODEC circuits)
5 => Communication with the outside =>
Your brain and body are now connected either by wifi or wireless means to a centralized control system. Computers continually analyse complex patterns of activity in your brain and translate them into the emotions you feel and the thoughts you think. Computers use precision brain stimulation and precision control of specific neural circuits in your brain to control how you think and what you believe to an extreme degree. Some individuals are no longer able to remember specific events or to think certain thoughts. They are preprogrammed to refuse to allow others to talk about certain topics within their hearing. You can also be physically controlled by external wireless means from an unknown remote location to the extent that you can be partially paralyzed or you can have your muscles forceably moved against your will. The demonic possession hoax was created in order to cover up this technological capability.
Who is behind your external control. The Rothschild banking family own and control all of the central banks in the world except three which are Iran, North Korea and Cuba. They even own the central bank of central banks which is the bank of International Settlements in Switzerland. They are major shareholders in all of the mega corporations of the world such as Van Guard, Blackrock, Birkshire Hathaway and others. They own most of the resources of the world. They have controlled the British monarchy and the Vatican ever since the Napoleonic wars two hundred years ago. Yet, they themselves could be being externally wirelessly controlled by unknown others. If that is the case we may never know. The police and military are all wirelessly connected to the internet of things to the extent that their thoughts are all being externally wirelessly controlled and they are unquestioningly and subserviently obedient to those who control the internet of things who might or might not be the Rothschild banking family.
Luckily, there is an easy solution to break free from having your brain and body externally wirelessly controlled as follows:
Take any one of the following medicines and you will destroy all of the nano technology inside your body and brain over time as follows :- Ivermectin, Chlorine dioxide, Black Oxygen or D.M.S.O. which is short from Dimethyl Sulfoxide. There are also many other medicines other than the above four which will oxidize all heavy metals in your body and brain and will kill all paracites which are growing inside your body. Some people recommend Borax as a possible solution. It will take several months and even longer to destroy all of the technology which has been injected into you. You must be patient. For information on intra-body nano networks check out a website called orwell.city
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Further evidence from Attorney General of Canada's letterS  for international (legal  ) proceedings against them.

Hacking UN Human Rights and the witness.org
https://ibb.co/GTDxzKC

Right now, I can hardly post and send anything to you because of their  hacking regardless of anything.

2 years ago, in my home I was given this message : "What you can't see can murder you. " And, Amnesty International " visited" my home.


UN
ICCPR
UN Human Rights
UN Human Rights Council
Amnesty International
International Bar Association
International Criminal Court
International Court of Justice
Canadian Government
UN Special Rapporteur on Torture, Nils Melzer

CC :

justin.trudeau@parl.gc.ca

sgcentral@un.org
antonio.guterres@un.org

mbachelet@ohchr.org

urgent-action@ohchr.org

CP@ohchr.org

cat@ohchr.org

ccpr@ohchr.org

sr-torture@ohchr.org

petitions@ohchr.org

information@icj-cij.org

info@geneva-academy.ch

Contact :

speakoutandrr@hotmail.com

Temporary  email :

xxodudztr@vddaz.com
jcmexz4wkk@sokuyo.xyz

After reading Mr Attorney General of Canada's letterS of 10 years ago

https://ibb.co/vw0dvds

Or

https://postimg.cc/QBbR8mnS

, and after seeing the whistleblowering :

" more than 200 police officers are living around and surrounding  one human rights lawyer."

All my neighbours , at least 2 Philippine couples,
they don't work at all for 5 , 10 ,or 15 years. But, they are so rich. "

1. https://ibb.co/wM9RBsk ( before hacked this address)

2. https://ibb.co/5B7KBDL ( before hacked this address)

, you all  can see for nearly 20 years who hack UN, International Human Rights Community, International Bar Association, International Criminal Court and everything I am using as they  continue to commit terror, psychological torture and MK Ultra in Ontario of Canada.

For details, here is my message I sent to you already. After I uploaded it, they at once hacked it. I couldn't open what I uploaded.

https://www48.zippyshare.com/v/H2FiJoiH/file.html

Fight  for my life being  threatened ; fight against ongoing (psychological ) torture, terror, poison, death threats and attempted murder by every possible means and with all possible Non-Lethal Weapons. I am not alone and I need your help.

Robin Yan

Canadian victim of torture

21/12/2021

Please transfer to International Bar Association, UN Human Rights Office , UN Human Rights Council by fax  and sr-torture@ohchr.org, thanks.

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The truth shall set you free

The truth shall set you free.

We don't hide stuff from people. We don't keep them in the dark. We don"t treat eachother like fools here. This is what we call helping eachother. Here you have a choice. We are not fake. Learn EVERYTHING you need to know about gangstalking. Who's your enimy and who's not. Accoustic weapons can do a lot to you. It changes your additude, makes you mean, happy etc.
●Gives you thoughts you don't have.
●Tries to change you.
It's revolting.
●It's used for character asassination, they try to change you into an evil person.

●Brain washing.
●Making you forget who you are.
Knowing this can help you. Don't believe the gangstalkers, never. God, Jehovah can help you. The thruth shall set you free.
Read the bible, meditate about it. God is love. Judge not, for no man can give fair judgement on eachother. Love is all we need.

 

https://freeworldnews.tv/watch?id=613b4badda602c1930e78741

Well Bye bye for now,

Angeline Klas

 

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Merry Christmas Everyone!

Hi Everybody! 

I hope you are all doing well. 

I just wanted to check in and wish you happy holidays. If you are alone, just know you are NOT actually alone. If you are sitting at home during the holidays and you feel sad, just know that so many other people are sitting at home the same way as you, thinking of you, feeling for you, even if you don't know each other you are all connected, WE are all connected , by our strenght, courage, bravery, uniqueness and the love and kindness we have for each other. So you see, you are really not alone. Maybe we are not physically together, but we are all together in this. Just buy a small chocolate and celebrate youtself! Or go out and help someone in bigger need, like a homeless person for example. Making someone else's days better, will brighten up yours too. 

This picture I am attaching is just a new perspective to look at things in a different light. 

Also a few tips: I mean it is really obvious but if you are a victim of directed energy weapon attacks, aluminium foil really does help. If your head is being attacked, wrap it around at least 4-5 times, around your head, also covering the back of your head and forehead too. It helps to sleep and to have a clear mind at least at home so you can think clearly. It can also block 'voice to skull beams'. You can also build a shield, by using a top of a plastic moving box (bigger one) or even a bigget piece of cardboard and wrap it around in aluminium foil all the way, each layer should cover the previous one, leave no gaps, at least 5-6 layers. If you know where the shots/beams coming from, you can use it next to your bed, it should block everything. It's not healthy to breathe aluminium though, so you can wrap the whole thing 1-2 more times in kitchen foil/the seethrough one 🙈, so you don't breathe in the aluminium dust. 

Well, thats all for now. 

Just remember how strong and loved you are! 

Have happy and peaceful holidays!!! ❤️❤️❤️

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THE SO-CALLED  COVID-19 VACCINE  IS NOT A VACCINE. IT IS AN INTRA-BODY NANO-NETWORK SO THAT YOU CAN BE EXTERNALLY PHYSICALLY CONTROLLED AND ENSLAVED.
Please check the following video where I obtained the following information:-
https://www.bitchute.com/video/VfLhetRht76h/
Components are being introduced into the human body with each innoculation. Together they act as a network for monitoring and interfering with the human body and brain. Nano routers will harvest information from the human body such as your vital signs, your blood pressure, your heart activity, your attention, your blood glucose levels, and many more. Signals will also be sent into the human body and with these signals changes in biology will occur as well as changes in behaviour.
Components of the intra-body nano-network that have been identified are as follows:-
carbon nano tubes, graphene quantum dot, hydrogel swimmers, graphene fractals, nano antennas, nano routers, CODEC or nano interface.

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Solution to being bound by Admiralty Law.

SOLUTION TO BEING BOUND BY ADMIRALTY LAW. - Excellent information.
You will find an excellent explanation of the three systems of law that operate in this world at the following bitchute.com link https://www.bitchute.com/video/SZcByjj23qFy/
If you haven't time to listen to it I have synopsized it here below as follows:-
1. Common Law - The law that governs men in relation to each other on land.
2.. Maratime Law - Maratime law governs ships at sea and how they interact with each other.
3. Admiralty Law - Admiralty law governs the interaction between a skipper and the crew members on ships Admiralty law also governs corporate citizens because corporations are deemed to be ships under law and their citizens are deemed to be the crew on ships.
All commerce and all corporations operate under shippig law. A corporation is considered to be a ship for the purposes of legal transactions. If you wish to be on the sea you must be incorporated with a vessel. A corporation is considered a ship under Admiralty law. The captain of that corporate ship is a magistrate in a court room.
When you become a citizen of a corporation you become subject to the same laws as a crew member on a ship which are Admiralty laws. In the distant past before the 1920's national governments were corporations and those national governments had their own lands. However, in the 1920's a new type of corporation was legally created by individuals who are unknown to most. These new types of corporations were not derived from nations and they had no land of their own . However, they are still bound by this thing called Admiralty Law. Because they were not derived from nations and because they had no land they were pirate corporations. They were international corporations and an example of one such pirate corporation is the United Nations. These international corporations are communes and communism is their ruling system. These international corporations operate under military dictatorship. Hitler, Stalin and Polpot etc were the magistrates of private international corporations. They were brutal dictators who ruled through fear.
When you become a citizen of an international corporation you are no longer considered a human being because a citizen of an international corporation is considered a creature or an animal with no human rights.
The commonwealth of Australia is considered an international corporation where the citizens have no human rights. The commonwealth of Australia is registered to the United States Securities and Exchange Commission which is a company of the United Nations. The United Nations is an international corporation which has no land so its citizens are considered creatures or animals with no human rights. The United Nations is a pirate international corporation and it depends on all of the corporations that have joined it to accept the equitable title of those lands, but it doesn't have any land itself. Therefore the United Nations is a total and absolute fiction.
SOLUTION TO THE PROBLEM OF BEING TREATED UNDER ADMIRALTY LAW AS A CREATURE AND THEREFORE AN ANIMAL WITH NO HUMAN RIGHTS WHATSOEVER.
If you have become a citizen of an international corporation with no human rights you must surrender your citizenship or your crewmanship. If you can support yourself without help from governments and if you then successfully surrender your citizenship you will go from being a crew member on the ship to being a passenger on the ship. The crew member has no human right but the passenger has enormous legal power. As a passenger on a ship you hold directive power. You direct the captain of the ship.
When you are born you are given two certificates.
1. Your state birth certificate.
2. Your certificate of birth. Your certificate of birth is the original setting up of the trustee ship which puts you as a benefactor of that trustee ship. As a passenger or benefactor of that trustee ship the captain of the ship is your trustee, and the crew are the trustees of the captain.
When giving your date of birth, you are not giving your own date of birth but instead you are giving the date of birth of your surname.
If you can stand alone without having to accept a benefit from an international corporation you have a greater chance of stepping back from being a crew member on a ship to being a passenger on a ship. A corporation is a business and its only motive is profit. Its only motive is to stay afloat. It is not interested in the safety of the crew. it may want to cull its crew. It has no mercy. If you interfere with the profit margins of the corporate ship which you are a crew member of you will pay the price for doing so. You may be culled.
There are now giant corporation on earth that own most of the resources of the earth between them. Among them are Blackrock, Vanguard, Birkshire Hathaway, State Street, among others. These giant corporations are called the Nephilim.

 

 

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Nikola Tesla rolls over in his grave

Thanks to the brave journalists and editorial offices of various portals in Serbia, they are increasingly publishing my comments about what we are fighting for and thus showing that they support me, all of us and all who come after us. Very offten I write something that absolutely reveals this parallel world of ours - digital conentration camps. The comment published a few days ago is related to a text that was a criticism of the Serbian government due to the leaking of the roof of the Belgrade airport named after our great Nikola Tesla. The title was: ‘Brooke Airport leaks, buckets and buckets everywhere! Nikola Tesla rolled over in his grave”.  I took the opportunity to write something completely different. Here is my posted comment:

“Nikola Tesla overturns in his grave because of something else

Serb Nikola Tesla rolls in the grave because of the insanity of his, identified compatriots who use and abuse his discoveries to punish and persecute people, women and children, his own citizens and because of creating Orwellian reality and demonstrations of intimidation of political dissidents, which many witnesses understood both in the country and in the world. He rolls over in his grave for manifesting how ‘caveman’ armed with his, Tesla’s electricity and discoveries, can persecute, torture, kill, induce suicide, induce murder, suffocate sleep, program dreams, try or succeed in raping digital, to commit and repeat the war crimes they committed against members of other nations in the real world and now against members of their own people in the digital world.

If we think that the Church’s attitude towards this evil could have been expressed in the words of the late Patriarch of the Serbian Orthodox Church Irinej ‘Devils work everywhere’, we must agree that this is true! But in the world, this is done by vicious professionals who are not caught and who take care not to be caught, because they know that they would be prosecuted and end up in prison, according to the laws of their countries and UN laws that apply to all member states!

And besides, their airports, recently renovated, are not leaking!”

 

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The covid-19 vaccine gives total control of your physical body to agents of the new world order. Most but not all members of the New World Order are Luciferians, Satanists and Ultra Zionists. The vaccine contains an intra body nano network so that your brain and body will be linked to a computerized control system and by that means every aspect of your brain and body can be monitored and eventually controlled. It is outright enslavement.  I know about it because I am already partially enslaved by this system.  We aught to have all transmitters and receivers throughout the world disassembled and banned now in order to save ourselves from enslavement.  The problem with that excellent idea is that many of those who are in positions of authority in governments  and main stream media  are having waves of very very low frequencies transmitted into their brains which make them unable to think clearly and the thought which they think are their own are in fact externally transmitted thoughts.  Thoughts will be transmitted into their brains to make them refuse to have microwave tranmsitters disassembled and banned.  Those who are most vulnerable to mass mind control are those who watch television, visit the cinema, attend large gatherings such as music festivals, football stadiums and church and also those who spend their entire day bathed in artificial electromagnetic frequencies which come from smart phones are smart watche which they keep on their persons throughout each day.  Please check out the following online link for more information on intra body nano networks.  Please share this post widely. 
https://www.bitchute.com/video/d44cpWuFPcQa/

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The divine right (rite) to rule is a false belief which has been programmed into cult member of a certain group. It has no basis in reality. Human beings are believed to have lived on planet earth for at least four thousand, five hundred million years according to some archaeologists whose work is being censored at this time. During that time, many individuals who wished to control other falsely claimed that they had a stronger connection with the intelligent energy of creation than all others and therefore should be allowed to control them. It is a method of manipulating others into handing over their autonomy to some ego maniac. The ego maniac who wishes to control others is often motivated to do so because he has a sense of low self worth and he needs to be in a position of power over others in order to boost his ego.
A truely strong man is emotionally autonomous. He does not need to control others to live his life. If fact he does not need the good opinion of others at all in order to live his life successfully.
 Furthermore, those who wish to set up false heirarchies for the purposes of controlling their fellow men and women always condense down time scales  into managable amounts of time so that they can create a false story to justify their system of control.   The Vatican and christianity censored archaeology and created a false time scale for the world in order to help them create their own false story.    They falsely claim that people have only lived for six thousand years when in fact men and women have lived on earth for at least four thousand five hundred million years and some believe that the world has always been here and men and women have always lived on it.   However, the inculcators could not allow others to ever  believe such truth because by doing so they would fail to inculcate anyone into their false belief system.   
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The divine right (rite) to rule is a false belief which has been programmed into cult member of a certain group. It has no basis in reality. Human beings are believed to have lived on planet earth for at least four thousand, five hundred million years according to some archaeologists whose work is being censored at this time. During that time, many individuals who wished to control other falsely claimed that they had a stronger connection with the intelligent energy of creation than all others and therefore should be allowed to control them. It is a method of manipulating others into handing over their autonomy to some ego maniac. The ego maniac who wishes to control others is often motivated to do so because he has a sense of low self worth and he needs to be in a position of power over others in order to boost his ego.
A truely strong man is emotionally autonomous. He does not need to control others to live his life. If fact he does not need the good opinion of others at all in order to live his life successfully
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The public have lost all confidence in the judiciary because their beliefs, emotions and behaviour are being remotely modulated by means of bioelectric resonance frequencies and they have done absolutely nothing to protect their brains from those frequencies. They have become stupified by frequencies and they seem not even aware of it. The United States Supreme court have made it legal for a corporation to own a living man or woman provided a patented technology has been injected into that living man or woman. What is to be done about this state of affairs?
LOW FREQUENCY WAVES MAKE IT POSSIBLE TO TRANSMIT SUGGESTIONS AND COMMANDS DIRECTLY INTO SOMEONE'S THOUGHT PROCESSES.
The UK based newspaper, Daily Mail, wrote that research in electro-magnetic weapons had been secretly carried out in the United States and Russia since the 1950s and that low-frequency waves or beams can affect brain cells, alter psychological states and make it possible to transmit suggestions and commands directly into someone’s thought processes. High doses of microwaves can damage the functioning of internal organs, control behavior or even drive victims to suicide." That article was written in 2013 – Let’s fast forward to an article that was published on October 8th, 2021 entitled “Behind NATO’s cognitive warfare; Battle for Your Brain waged by Western Militaries” by Ben Norton.
“Western governments in the NATO military alliance are developing tactics of “cognitive warfare”, using the supposed threats of China and Russia to justify waging a battle for your brain in the human domain to make everyone a weapon.
According to Darpa whistleblower, Dr Paul Batcho, and a document that leaked from the Washington State Fusion Center in 2018, cell towers are being used for mass electromagnetic mind control. This means that cell towers across America are weaponized with bioelectric resonance frequencies that can hijack the brain's thought center, somatosensory cortex, visual cortex, auditory cortex, and motor cortex. By tapping into the brain's thought center, cell towers can remotely control a person's thoughts, memory, emotions and behavior

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I HAVE BEEN ILLEGALLY PLACED ON A TERRORIST WATCH LIST.
Dissidents who oppose the worldwide fascist regieme are put on a world Terrorist Watch List where they lose all of their human rights and from that time forward they are wirelessly experimented on and tortured from an unknown remote location by unknown assailants. Those on the Terrorist Watch List who are being subjected to non-consensual human experimentation are known as Targeted Individuals. I am a targeted individual and I have been subjected to non-consensual human experimentation for nearly nineteen years without a break. I am not being believed by those who are tasked with protecting my human rights in Ireland and further afield. My name is Gretta Fahey aka Margaret Fahey. My address is Newbrook, Claremorris, Co. Mayo, Eircode F12 Y560, Republic of Ireland.

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The public have lost all confidence in the judiciary because their beliefs, emotions and behaviour are being remotely modulated by means of bioelectric resonance frequencies and they have done absolutely nothing to protect their brains from those frequencies.    They have become stupified by frequencies and they seem not even aware of it.   The United States Supreme court have made it legal for a corporation to own a living man or woman provided a patented technology has been injected into that living man or woman.  What is to be done about this state of affairs? 

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Property, vehicles, electronics, human and animal health are all be remotely destroyed with frequencies. Solution - ban all transmitters and receivers.
The judiciary, politicians, the police, the military and others have failed to protect their brains from electromagnetic frequencies so now their perception of reality is faulty to the extent that they are leading us into enslavement.
Solution - ban all transmitters and receivers unless you can think of an other solution.
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