4.8 Article

High-areal-capacity of micron-sized silicon anodes in lithium-ion batteries by using wrinkled-multilayered-graphenes

Journal

ENERGY STORAGE MATERIALS
Volume 50, Issue -, Pages 234-242

Publisher

ELSEVIER
DOI: 10.1016/j.ensm.2022.05.025

Keywords

Wrinkled-multilayered-graphene; Si microparticle; Lithium-ion battery; High-areal-capacity; Binder-& conductor-free electrode

Funding

  1. LG Chem Ltd. [NRF-2020R1A4A4079870 andNRF-2021R1A2C1008718]
  2. Na-tional Research Foundation of Korea [GRRCHanyang2020-B01]
  3. GRRC program of Gyeonggi province

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A simple and scalable method utilizing commercially available Si microparticles with wrinkled-multilayered-graphenes (Si-WMGs) has been demonstrated for high-areal-capacity lithium-ion batteries (LIBs). The Si-WMG electrodes show high initial areal capacities, outstanding long-term stability, and practical applicability. This approach has the potential for use in other high-areal-capacity LIBs electrodes with a large volume change and high mass-loading.
Even nanostructured Si electrodes have demonstrated stable electrochemical performances in lithium-ion bat-teries (LIBs), complex process and high-cost of nanostructured Si electrodes are far from industry standards. Thus, utilization of commercially available low-cost Si microparticles with high-performance is highly necessary for high-energy-density LIBs. Herein, we demonstrate a simple and scalable method to utilize commercially available Si microparticles (ca. 7 mu m) with wrinkled-multilayered-graphenes (Si-WMGs) for high-areal-capacity LIBs. The WMGs provide not only mechanical flexibility for mitigating large volume change of Si microparticles during deep charge/discharge processes, but also good adhesion property to effectively coalesce Si microparti-cles, and high electrical conductivity, resulting in binder-and conductor-free thick electrodes. The Si-WMG electrodes showed high initial areal capacities of 12.5 mAh cm-2 at 0.1 C and 7.1 mAh cm-2 even at a very high rate of 2 C, with outstanding long-term stability with 5.3 mAh cm-2 at 2 C for over 240 cycles. Furthermore, a full cell composed of Si-WMG and lithium cobalt oxide presented 3.13 mAh cm-2 and a stable cycling per-formance (90.3% retention after 100 cycles) in a practical cell setting, clearly demonstrating the practical applicability of Si-WMG electrodes. Therefore, the WMG as a binder and conductor could be applicable to other electrodes with a large volume change and high mass-loading for high-areal-capacity LIBs.

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