A systematic review of nanotechnology for electric vehicles battery

Author:

Kumar Pulkit1ORCID,Channi Harpreet Kaur1ORCID,Babbar Atul2ORCID,Kumar Raman3ORCID,Bhutto Javed Khan4,Khan T M Yunus5,Bhowmik Abhijit67,Razak Abdul8ORCID,Wodajo Anteneh Wogasso9

Affiliation:

1. Chandigarh University Department of Electrical Engineering, , Gharuan, Mohali, Punjab, 140413, India

2. SGT University Department of Mechanical Engineering, , Budhera, Gurugram-Badli Road, Gurugram, Haryana 122505, India, India

3. Guru Nanak Dev Engineering College Department of Mechanical and Production Engineering, , Gill Park, Gill Road, Ludhiana, 141006, Punjab, India

4. King Khalid University Department of Electrical Engineering, College of Engineering, , P.O.Box : 960 - Postal Code : 61421, Abha, Saudi Arabia

5. King Khalid University Abha Department of Mechanical Engineering, College of Engineering, , P.O.Box : 960 - Postal Code : 61421, Saudi Arabia

6. Dream Institute of Technology Department of Mechanical Engineering, , Kolkata, West Bengal, 700104, India

7. Lovely Professional University Division of Research & Development, , G.T. Road, Phagwara, Punjab, 144001, India

8. Affiliated to Visvesvaraya Technological University Department of Mechanical Engineering, P. A. College of Engineering ( ), Belagavi, Mangaluru, 574153, Karnataka, India

9. Dilla University Department of Automotive Engineering, College of Engineering and Technology, , Dilla, P.O.Box: 419, Ethiopia

Abstract

Abstract Nanotechnology has increased electric vehicle (EV) battery production, efficiency and use. Nanotechnology is explored in this electric car battery illustration. Nanoscale materials and topologies research has increased battery energy density, charge time and cycle life. Nanotubes, graphene and metal oxides improve energy storage, flow and charging/discharge. Solid-state and lithium-air high-energy batteries are safer, more energy dense and more stable using nanoscale catalysts. Nanotechnology improves battery parts. Nanostructured fluids reduce lithium dendrite, improving batteries. Nanocoating electrodes may reduce damage and extend battery life. Nanotechnology benefits the planet. Nanomaterials allow battery parts to employ ordinary, safe materials instead of rare, harmful ones. Nanotechnology promotes battery recycling, reducing waste. Change does not influence stable, cost-effective or scalable items. Business opportunities for nanotechnology-based EV batteries need more research. High-performance, robust and environmentally friendly batteries might make electric cars more popular and transportation more sustainable with research and development. An outline of EV battery nanotechnology researchexamines the publication patterns, notable articles, collaborators and contributions. This issue was researched extensively, indicating interest. Research focuses on anode materials, energy storage and battery performance. A research landscape assessment demonstrates EV battery nanotechnology’s growth and future. A comprehensive literature review examined nanosensors in EVs. Our study provides a solid foundation for understanding the current state of research, identifying major trends and discovering nanotechnology breakthroughs in EV sensors by carefully reviewing, characterizing and rating important papers.

Publisher

Oxford University Press (OUP)

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