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Role of Carbon Nanotubes as Energy Storage Materials

Document Type : Review

Authors

1 Department of Chemistry, Dr. Hari Singh Gour Central University, Sagar-470003, IN

2 Dr. Hari Singh Gour University, Sagar, M.P. India

3 Dr. Hari Singh Gour University Sagar M.P

4 Dr. Hari Singh Gour Central University, Sagar-470003, IN

Abstract
Graphene and carbon nanotubes (CNTs) have gotten a lot of attention because of their varied nanostructures, making it a very intriguing and comprehensive topic in nanotechnology. Graphene and carbon nanotubes (CNTs) both have unique electrical, mechanical, thermal, catalytic, and electrochemical features because they are made up of sp2 hybridized carbon atoms. Carbon nanotube hybrid nanostructured materials (CNT hybrid nanocomposites), Carbon nanotubes (CNTs), and nanotechnology have the potential to improve energy conversion and storage device applications. Carbon nanotubes are being evaluated for application in renewable energy sources, including solar cells and hydrogen storage. Carbon nanotubes (CNTs) are utilized in storage technologies such as Li-ion batteries, supercapacitors, and thermal energy harvesting. We describe the functions of carbon nanotubes (CNTs) in new energy storage technologies, particularly electrochemical supercapacitors and Lithium-ion batteries, in this study. The use of carbon nanotubes in binder-free electrodes, microscaled current collectors, and adaptable and stretchy energy storage systems is also explored.

Keywords

Subjects

[1] S. Iijima, Nature, 354, 56–58 (1991).
[2] T. Belin and F. Epron, Materials Science and Engineering: B, 119, 105–118 (2005).
[3] H. W. Kroto and D. R. M. Walton, The Fullerenes: New Applications, (Available at:
https://sciarium.com/file/21914/).
[4] M. Rahmandoust and A. Öchsner, Journal of Nano Research, 16, 153–160 (2012).
[5] M. T. Ahmadi and J. F. Webb, Taylor & Francis, (2018).
[6] K. Varshney, International Journal of Engineering Research and General Science, 2, 660–
677 (2014).
[7] B. K. Kaushik and M. K. Majumder, SpringerBriefs in Applied Sciences and Technology,
(2015).
[8] K. Kierzek, E. Frackowiak, G. Lota, G. Gryglewicz, and J. Machnikowski, Electrochimica
Acta, 49, 515–523 (2004).
[9] C. E. Banks and R. G. Compton, The Analyst, 131, 15–21 (2006).
[10] E. T. Thostenson, Z. Ren, and T.-W. Chou, Composites Science and Technology, (2001).
[11] K. Tserpes and P. Papanikos, Composites Part B: Engineering, 36, 468–477 (2005).
[12] C. Li and T.-W. Chou, International Journal of Solids and Structures, 40, 2487–2499
(2003).
[13] D. Vairavapandian, P. Vichchulada, and M. D. Lay, Analytica Chimica Acta, 626, 119–
129 (2008).
[14] M. S. Dresselhaus, G. Dresselhaus, and R. Saito, Carbon, (2000).
[15] M. Trojanowicz, TrAC Trends in Analytical Chemistry, 25, 480–489 (2006).
[16] T. Guo, P. Nikolaev, A. Thess, D. T. Colbert, and R. E. Smalley, Chemical Physics Letters,
(2000).
[17] J. H. Hafner et al., Chemical Physics Letters, (1998).
[18] S. Lebedkin et al., Carbon, (1970).
[19] A. Venkataraman, E. V. Amadi, Y. Chen, and C. Papadopoulos, Nanoscale Research
Letters, (2019).
[20] F. Darkrim, P. Malbrunot, and G. Tartaglia, International Journal of Hydrogen Energy,
27, 193–202 (2002).
[21] D. Shi, Z. Guo, and N. Bedford, Nanomaterials and Devices, (2014).
[22] G. G. Tibbetts, G. P. Meisner, and C. H. Olk, Carbon, (2001).
[23] Y. T. Ong, A. L. Ahmad, S. H. S. Zein, and S. H. Tan, Brazilian Journal of Chemical
Engineering, (2010).
[24] K. V. Wong and B. Bachelier, Journal of Energy Resources Technology, 136, (2013).
[25] V. Sgobba and D. M. Guldi, J. Mater. Chem., 18, 153–157 (2008).
[26] S. Cataldo, P. Salice, E. Menna, and B. Pignataro, Energy & Environmental Science,
(2011).
[27] M. C. Scharber et al., Wiley Online Library, (2006).
[28] W. Fan, L. Zhang, and T. Liu, Ghent University Library, (1970).
[29] H. Cheng, J. G. Shapter, Y. Li, and G. Gao, Journal of Energy Chemistry, (2020).
[30] ACS Publications, (Available at: https://pubs.acs.org/doi/abs/10.1021/cr9003314).
[31] I. A. G. Wilson, P. Hall, and A. Rennie, Energy & Environmental Science, (2016).
[32] Y. Wang et al., MDPI, (2015).
[33] E. Frackowiak, K. Metenier, V. Bertagna, and F. Beguin, AIP Publishing, (2000).
[34] A. Samimi, S. Zarinabadi, and A. Bozorgian, International Journal of New Chemistry,
(2021).
[35] S. Kjelstrup, Journal of The Electrochemical Society, (2016).
[36] M. S. Romano et al., Journal of Nanoscience and Nanotechnology, (Available at:
https://pubmed.ncbi.nlm.nih.gov/26328301/).
[37] R. S. Gonçalves and T. Ikeshoji, Journal of the Brazilian Chemical Society, 3, 98–101
(1992).
[38] M. Rdest and D. Janas, Sensors (Basel, Switzerland), (2021).
[39] A. J. Bard and L. R. Faulkner, Wiley.com, (2000).
[40] K. K. Singh, A. Singh, and S. Rai, Materials Today: Proceedings, (2021).