锂离子电池用二维硅阳极的研究进展与展望

Han Zhao , Fan Yang , Chongxing Li , Tong Li , Shuxian Zhang , Chengxiang Wang , Zhiwei Zhang , Rutao Wang
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引用次数: 4

摘要

具有极高理论容量的硅(Si)阳极被认为是下一代高能锂离子电池(LIBs)不可或缺的。然而,一些棘手的问题,包括粉碎、电接触不良以及在锂化/脱锂过程中硅的大体积变化引起的连续副反应,导致循环寿命短和倍率能力差,从而阻碍了硅阳极在LIBs中的商业应用。具有独特类石墨烯结构的二维(2D)Si具有短的离子扩散路径、锂化过程中的小体积变化和有效的氧化还原位点利用,使其比体相Si或具有其他通用结构的Si更有前景用于LIBs。理论分析表明,二维硅表面的低能垒加速了Li+的传输。然而,围绕2D Si的问题,包括繁琐和用户不友好的合成、易于重新堆叠和大气敏感性,限制了其实际应用,本文对此进行了讨论。此外,还为这些剩余挑战提供了可能的解决方案和新的方向,目的是为下一代LIBs设计实用且高性能的2D Si阳极。
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Progress and perspectives on two-dimensional silicon anodes for lithium-ion batteries

Silicon (Si) anodes with extremely high theoretical capacities are considered indispensable for next-generation high-energy lithium-ion batteries (LIBs). However, several intractable problems, including pulverization, poor electrical contact, and continuous side reactions caused by the large volume change of Si during lithiation/delithiation, lead to a short cycle life and poor rate capability, thus hindering the commercial use of Si anodes in LIBs. Two-dimensional (2D) Si with a unique graphene-like structure has a short ion diffusion pathway, small volume change during lithiation, and efficient redox site utilization, making it more promising than bulk Si or Si with other versatile structures for use in LIBs. Theoretical analysis demonstrated that the low energy barrier on the surface of 2D Si accelerates the transport of Li+. However, the issues surrounding 2D Si, including the tedious and user-unfriendly synthesis, ease of restacking, and atmospheric sensitivity, limit its practical applications, which are discussed in this review. Furthermore, possible solutions to these remaining challenges and new directions are provided, with the aim of designing practical and high-performance 2D Si anodes for next-generation LIBs.

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