Application of silicon nanotechnology in lithium-ion battery anodes
DOI:
https://doi.org/10.54097/w16exe37Keywords:
Lithium-ion batteries, nanotechnology, silicon anodes, electric vehicles.Abstract
The lithium-ion batteries (LIBs) are considered one of the significant parts of an electric vehicle and have become a hot research topic regarding how to improve the lifespan and energy capacity of lithium-ion batteries. Silicon, which has excellent electric conductivity and high specific capacity, could vastly improve performance and electric conductivity compared with graphite-based lithium-ion batteries. However, the issue of silicon volume expansion and the formation of solid electrolytes hinder the use of pure silicon as anodes. With the prevalence of nanotechnology, using silicon as a marvelous substitute for graphite anodes is possible again as silicon nanotechnology could dramatically alleviate the volume expansion issue and improve the performance on a large scale. As a result, the application of silicon nanotechnology in lithium-ion batteries seems promising in the next several years. In this paper, the working principle of LIBs is first summarized. Then, the shortcomings of current silicon-based materials as negative electrodes are presented. Finally, the application of nanotechnology in the negative electrode of silicon-based LIBs is discussed, highlighting the role of different dimensions of silicon nanomaterials in LIBs.
Downloads
References
[1] Chen X, Tian Y. Review of graphene in cathode materials for lithium-ion batteries. Energy & Fuels, 2021, 35 (4).
[2] Xia X, Qian X, Chen C, et al. Recent progress of Si-based anodes in the application of lithium-ion batteries. Journal of Energy Storage, 2023, 72 (1): 1 - 28.
[3] Du A, Li H, Chen X, et al. Recent research progress of silicon-based anode materials for lithium-ion batteries. ChemistrySelect, 2022.
[4] He J, Meng J, Huang Y. Challenges and recent progress in fast-charging lithium-ion battery materials. Journal of Power Sources, 2023.
[5] Zhou L, Yang H, Han T, et al. Carbon-based modification materials for lithium-ion battery cathodes: advances and perspectives. Frontiers in Chemistry, 2022.
[6] Wang Y, Wang Y, et al. Si-based Anode Lithium-Ion Batteries: A Comprehensive Review of Recent Progress. ACS Materials Letters, 2023, 5 (11): 2948 - 2970.
[7] Liu N, Wu H, Mcdowell MT, et al. A yolk-shell design for stabilized and scalable li-ion battery alloy anodes. Nano Letters, 2012, 12 (6): 3315.
[8] Li L, Xu Y, Sun X, et al. Fluorophosphates from solid-state synthesis and electrochemical ion exchange: NaVPO4F or Na3V2 (PO4) 2F3. Advanced Energy Materials, 2018, 8 (24).
[9] Hwang TH, Lee YM, kong BS, et al. Electrospun core-shell fibers for robust silicon nanoparticle-based lithium-ion battery. Nano letters, 2012, 12 (2): 802 - 807.
[10] Wu F, Dong Y, Su YF, et al. Benchmarking the effect of particle size on silicon anode materials for lithium‐ion batteries. Small, 2023, 19 (42).
[11] Rahman MA, Song G, Bhatt AI, et al. Nanostructured silicon anodes for high‐performance lithium‐ion batteries. Advanced Functional Materials, 2016, 26 (5).
Downloads
Published
Issue
Section
License
Copyright (c) 2024 Highlights in Science, Engineering and Technology

This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License.







