Wireless Communication Using the Platform of Nanotechnology
DOI:
https://doi.org/10.61841/nx4bcb55Keywords:
nanotechnology, mechanical insurgency, medication, chip, sensorAbstract
Nanotechnology these days has turned into the most important field of study created and a research field in numerous fields including common, concoction designing, gadgets, and medication, likewise in materials. In the current scenario, nanotechnology is considered as mechanical insurgency which might give more conceivable outcomes and surpass our desires in numerous fields. In media transmission building nanotechnology could give prominent answers for controlled processing, detecting, memory extension, and human-machine connection. Nanotechnology in correspondence models gives the capacity to the inventors to deliver components and sensors that are quite smaller, faster, effective, and not costly for the process of fabrication than their present-day modules. In this paper a review of numerous issues identified with nanotechnology in correspondence models is examined, to study the potential use of different nanotechnology-based improvements in the models and holds potential for future results that may prompt improved correspondence models.
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References
[1] J. S. Yaradoddi, M. H. Kontro, S. V. Ganachari, M. B. Sulochana, and D. Agsar, ‘Protein nanotechnology’, in
Handbook of Ecomaterials, 2019.
[2] T. V. Varghese, ‘A review on biomimetics and nanotechnology’, in Proceedings of the International
Conference on Nanoscience, Engineering and Technology, ICONSET 2011, 2011, pp. 472–477.
[3] M. Shimomura, ‘Engineering Biomimetics: Integration of Biology and Nanotechnology’, in Design for
Innovative Value Towards a Sustainable Society, 2012, pp. 905–907.
[4] S. Johnson, ‘Nanotechnology’, in Encyclopedia of Applied Ethics, 2012.
[5] X. Qu, P. J. J. Alvarez, and Q. Li, ‘Applications of nanotechnology in water and wastewater treatment’, Water
Res., 2013.
[6] F. Sanchez and K. Sobolev, ‘Nanotechnology in concrete - A review’, Construction and Building Materials.
2010.
[7] K. D. Wong, Fundamentals of Wireless Communication Engineering Technologies. 2011.
[8] A. Bala and A. Grover, ‘Survey on Wireless Sensor Network’, Int. J. Comput. Appl., vol. 155, no. 14, pp. 34–
38, 2016.
[9] S. Srivastava, M. Singh, and S. Gupta, ‘Wireless Sensor Network: A Survey’, in 2018 International Conference
on Automation and Computational Engineering, ICACE 2018, 2018, pp. 159–163.
[10] S. R, S. A. V, and A. S. V.S, ‘Wireless Sensor Network : A Survey’, IJARCCE, vol. 7, no. 11, pp. 114–117,
2018.
[11] B. Leung, VLSI for Wireless Communication. 2011.
[12] S. Bi, C. K. Ho, and R. Zhang, ‘Wireless powered communication: Opportunities and challenges’, IEEE
Commun. Mag., 2015.
[13] A. Ben Amar, A. B. Kouki, and H. Cao, ‘Power approaches for implantable medical devices’, Sensors
(Switzerland). 2015.
[14] J. M. Jornet and I. F. Akyildiz, ‘Information capacity of pulse-based Wireless Nanosensor Networks’, in 2011
8th Annual IEEE Communications Society Conference on Sensor, Mesh and Ad Hoc Communications and
Networks, SECON 2011, 2011.
[15] I. Llatser, A. 2-Aparicio, and E. Alarcón, ‘Networking challenges and principles in diffusion-based molecular
communication’, IEEE Wirel. Commun., 2012.
[16] N. Farsad, W. Guo, and A. W. Eckford, ‘Tabletop molecular communication: Text messages through chemical
signals’, PLoS One, 2013.
[17] P. Kethineni, ‘Applications of internet of nano things: A survey’, in 2017 2nd International Conference for
Convergence in Technology, I2CT 2017, 2017, vol. 2017-January, pp. 371–375.
[18] I. F. Akyildiz, M. Pierobon, S. Balasubramaniam, and Y. Koucheryavy, ‘The internet of Bio-Nano things’,
IEEE Commun. Mag., vol. 53, no. 3, pp. 32–40, 2015.
[19] H. F. Atlam, R. J. Walters, and G. B. Wills, ‘Internet of Nano Things’, 2018, pp. 71–77.
[20] J. M. Jornet and I. F. Akyildiz, ‘The internet of multimedia Nano-Things’, Nano Commun. Netw., vol. 3, no. 4,
pp. 242–251, 2012.
[21] H. Ezz El-Din and D. H. Manjaiah, ‘Internet of Nano Things and Industrial Internet of Things’, 2017, pp. 109–
123.
[22] Y. Kim, H. Y. Choi, and Y. C. Lee, ‘Novel mems position sensors for aerospace applications’, in 49th
AIAA/ASME/SAE/ASEE Joint Propulsion Conference, 2013, vol. 1 PartF.
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