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固态锂离子电池中的硅阳极改性策略。

Silicon anode modification strategies in solid-state lithium-ion batteries.

作者信息

Deng Yang, Feng Xiaohan, Qian Zhonglin, Ma Jurui, Ouyang Yitao, Li Weijie, Han Chao

机构信息

School of Materials Science and Engineering, Central South University, Changsha 410083, Hunan, P. R. China.

Powder Metallurgy Research Institute, Central South University, Changsha 410083, Hunan, P. R. China.

出版信息

Mater Horiz. 2025 Jul 28;12(15):5513-5538. doi: 10.1039/d5mh00434a.

Abstract

The development and application of solid-state electrolytes in lithium-ion batteries (LIBs) have become mainstream in the industry of LIBs. Compared with liquid electrolytes, solid-state electrolytes offer higher safety and energy density and are expected to further broaden the application fields of lithium-ion batteries. Conventional solid-state lithium-ion batteries (SSLIBs) employ lithium metal as their anode, which raises new concerns about their safety and waste management. Therefore, silicon, with high safety, high theoretical capacity, low electrochemical plateau, and low handle cost, has become the most promising new-generation anode material. However, due to the volume expansion of silicon and the low contact with solid-state electrolytes, resulting in poor conductivity, the SSLIBs' capacity has not reached the expected level and the cycle performance is also poor. Therefore, further modification of silicon anodes has become one of the key points in the development of SSLIBs. This paper comprehensively expounds on the application and optimization of silicon anodes in SSLIBs. It proposes further optimization strategies, which focus on preventing the destruction of silicon and extending its lifespan. The strategies include (1) silicon with different morphologies; (2) the formation of amorphous silicon; and (3) silicon composites.

摘要

固态电解质在锂离子电池中的开发与应用已成为锂离子电池行业的主流。与液体电解质相比,固态电解质具有更高的安全性和能量密度,有望进一步拓宽锂离子电池的应用领域。传统的固态锂离子电池以锂金属作为负极,这引发了对其安全性和废物管理的新担忧。因此,硅因其高安全性、高理论容量、低电化学平台以及低成本处理,已成为最具潜力的新一代负极材料。然而,由于硅的体积膨胀以及与固态电解质的低接触性,导致导电性差,固态锂离子电池的容量未达到预期水平,循环性能也较差。因此,对硅负极进行进一步改性已成为固态锂离子电池发展的关键点之一。本文全面阐述了硅负极在固态锂离子电池中的应用与优化。提出了进一步的优化策略,重点在于防止硅的破坏并延长其使用寿命。这些策略包括:(1)不同形态的硅;(2)非晶硅的形成;(3)硅复合材料。

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