This is an unedited manuscript accepted for publication and provided as an Article in Press for early access at the author’s request. The article will undergo copyediting, typesetting, and galley proof review before final publication. Please be aware that errors may be identified during production that could affect the content. All legal disclaimers of the journal apply.
Journal Menu
By: Nikat Rajak Mulla and Kazi Kutubuddin Sayyad Liyakat
1 Student, Department of Electronics and Telecommunication Engineering, Brahmdevdada Mane Institute of Technology, Solapur, Maharashtra, India
2 Professor and Head, Department of Electronics and Telecommunication Engineering,Brahmdevdada Mane Institute of Technology, Solapur, Maharashtra, India
A rapid expansion is taking place in the field of robotics, which has the ability to alter the world
in a variety of different ways. Robots are now an indispensable factor of our lives, performing a
wide range of tasks, including enhancing production and efficiency, paving the way for new
developments, and providing us with entertainment. It is imperative that the development of
robotics be carried out in a responsible and ethical manner to fully realise the potential of this
interesting sector. This is especially important as we strive to make technological progress. The
subject of nano-robotics is rapidly expanding, and it has the potential to dramatically enhance the
quality of life we lead as well as alter a variety of different businesses. On the other hand, it is of
the highest importance to guarantees that these minuscule machines are produced and utilized in
a way that is ethical and responsible. The prospects of nano-robotics seems to be bright, and if
the appropriate rules and procedures are put into place, we should expect seeing even more
applications that break new ground in the years to come with this technology. An essential
component of the idea of nano-robotics is the utilization of nanomaterials, motors, sensors,
communication, microfluidics, self-assembly, and artificial intelligence. Nanobots are robots that
are capable of performing a range of activities at the nanoscale. These ideas, when combined,
make it possible to develop, construct, and operate nanobots. This developing technology is
experiencing a period of great excitement as a result of the ongoing breakthroughs in the field of
nano-robotics, which has potential to be applied in infinite number of places. A varied range of
uses can still be initiate in this subject.
Keywords- Robotics, Nanoscale, Nanorobotics, Nanomaterials, Robots.
![]()
Citation:
Refrences:
1. Samreen T, Rasool S, Kanwal S, Riaz S, Nazir MZ. Role of nanotechnology in precision agriculture. Environmental Sciences Proceedings. 2022 Dec 20;23(1):17.
2. Liyakat KK, Halli UM. Nanotechnology in IoT security. Journal of Nanoscience, Nanoengineering & Applications. 2022;12(3):11-6.
3. Liyakat KK, Halli UM. Nanotechnology in E-Vehicle batteries. International Journal of Nanomaterials and Nanostructures. 2022;8(2):22-7.
4. Ragaei M, Sabry AK. Nanotechnology for insect pest control. International journal of science, environment and technology. 2014;3(2):528-45.
5. Oves M, Khan MS, Zaidi A, Ahmed AS, Ahmed F, Ahmad E, Sherwani A, Owais M, Azam A. Antibacterial and cytotoxic efficacy of extracellular silver nanoparticles biofabricated from chromium reducing novel OS4 strain of Stenotrophomonas maltophilia. PloS one. 2013 Mar 21;8(3):e59140.
6. Liyakat KS. Nanotechnology application in neural growth support system. Nano Trends: A Journal of Nanotechnology and Its Applications. 2022;24(2):47-55.
7. Zhong F, Wang J, Cheng X. Application of Intelligent Traffic Control Based on PLC. InConference of the 2nd International Conference on Computer Science and Electronics Engineering (ICCSEE 2013) 2013 Mar (pp. 1044-1048). Atlantis Press.
8. Doshi J, Patel T, kumar Bharti S. Smart Farming using IoT, a solution for optimally monitoring farming conditions. Procedia Computer Science. 2019 Jan 1;160:746-51.
9. Liyakat KK. Nanotechnology in precision farming: The role of research. International Journal of Nanomaterials and Nanostructures. 2023;9(2):22-8.
10. Liyakat KK. Model for Agricultural Information system to improve crop yield using IoT. Journal of open Source development. 2022;9(2):16-24.
11. Atlam HF, Walters RJ, Wills GB. Internet of nano things: Security issues and applications. InProceedings of the 2018 2nd international conference on cloud and big data computing 2018 Aug 3 (pp. 71-77).
12. Barrios P, Danjou C, Eynard B. Literature review and methodological framework for integration of IoT and PLM in manufacturing industry. Computers in Industry. 2022 Sep 1;140:103688.
13. Opris I, Lebedev MA, Pulgar VM, Vidu R, Enachescu M, Casanova MF. Nanotechnologies in neuroscience and neuroengineering. Frontiers in neuroscience. 2020 Feb 12;14:33.
14. Roco MC. A frontier for engineering. Mechanical Engineering. 2001 Jan 1;123(01):52-5.
15. Alabdulatif A, Thilakarathne NN, Lawal ZK, Fahim KE, Zakari RY. Internet of nano- things (iont): A comprehensive review from architecture to security and privacy challenges. Sensors. 2023 Mar 3;23(5):2807.
16. Liyakat KS, Liyakat KK. Nanomedicine as a Potential Therapeutic Approach to COVID- 19. International Journal of Applied Nanotechnology. 2023;9(2):27-35.
17. Akhtar N, Perwej Y. The internet of nano things (IoNT) existing state and future Prospects. GSC Advanced Research and Reviews. 2020 Nov 30;5(2):131-50.
18. Venkatesan M, Jolad B. Nanorobots in cancer treatment. InINTERACT-2010 2010 Dec 3 (pp. 258-264). IEEE.
19. Ley MB, Meggouh M, Moury R, Peinecke K, Felderhoff M. Development of hydrogen storage tank systems based on complex metal hydrides. Materials. 2015 Sep 4;8(9):5891- 921.
20. Majeed R, Abdullah NA, Faheem Mushtaq M, Umer M, Nappi M. Intelligent cyber- security system for iot-aided drones using voting classifier. Electronics. 2021 Nov 25;10(23):2926.
21. Kazi KS. Braille-Lippi Numbers and Characters Detection and Announcement System for Blind Children Using KSK Approach: AI-Driven Decision-Making Approach. InDriving Quality Education Through AI and Data Science 2025 (pp. 531-556). IGI Global Scientific Publishing.
22. Kazi KS. Hydrogen Energy: Adaptation and Challenges. InObstacles Facing Hydrogen Green Systems and Green Energy 2025 (pp. 205-236). IGI Global Scientific Publishing.
23. Kazi KS. Roll of Carbon-Based Supercapacitors in Regenerative Breaking for Electrical Vehicles. InInnovations in Next-Generation Energy Storage Solutions 2025 (pp. 523- 572). IGI Global Scientific Publishing.
24. Kazi KS. ChatGPT: An automated teacher's guide to learning. InAI Algorithms and ChatGPT for Student Engagement in Online Learning 2024 (pp. 1-20). IGI Global.
25. Priya Mangesh Nerkar, Bhagyarekha Ujjwalganesh Dhaware. (2023). Predictive Data Analytics Framework Based on Heart Healthcare System (HHS) Using Machine Learning, Journal of Advanced Zoology, 2023, Volume 44, Special Issue -2, Page 3673:3686. Available at: https://jazindia.com/index.php/jaz/article/view/1695
26. Johri A, Bhadula S, Sharma S, Shukla AS. Assessment of factors affecting implementation of IoT based smart skin monitoring systems. Technology in Society. 2022 Feb 1;68:101908.
27. Kazi KS. Advancing Towards Sustainable Energy With Hydrogen Solutions: Adaptation and Challenges. InGeopolitical Landscapes of Renewable Energy and Urban Growth 2025 (pp. 357-394). IGI Global Scientific Publishing.
28. Liyakat KK, Khadake SB, Chounde AB, Suryagan AA, HM M, Khadatare MR. AI- Driven-IoT (AIIoT) Based Decision Making System for High-Blood Pressure Patient Healthcare Monitoring. In2024 International Conference on Sustainable Communication Networks and Application (ICSCNA) 2024 Dec 11 (pp. 96-102). IEEE.

