Feng Kun, Li Matthew, Liu Wenwen, Kashkooli Ali Ghorbani, Xiao Xingcheng, Cai Mei, Chen Zhongwei
Department of Chemical Engineering, Waterloo Institute for Nanotechnology, Waterloo Institute of Sustainable Energy, University of Waterloo, 200 University Ave. W, Waterloo, ON, N2L 3G1, Canada.
General Motors Global Research and Development Center, 30500 Mound Road, Warren, MI, 48090, USA.
Small. 2018 Feb;14(8). doi: 10.1002/smll.201702737. Epub 2018 Jan 22.
Silicon has been intensively studied as an anode material for lithium-ion batteries (LIB) because of its exceptionally high specific capacity. However, silicon-based anode materials usually suffer from large volume change during the charge and discharge process, leading to subsequent pulverization of silicon, loss of electric contact, and continuous side reactions. These transformations cause poor cycle life and hinder the wide commercialization of silicon for LIBs. The lithiation and delithiation behaviors, and the interphase reaction mechanisms, are progressively studied and understood. Various nanostructured silicon anodes are reported to exhibit both superior specific capacity and cycle life compared to commercial carbon-based anodes. However, some practical issues with nanostructured silicon cannot be ignored, and must be addressed if it is to be widely used in commercial LIBs. This Review outlines major impactful work on silicon-based anodes, and the most recent research directions in this field, specifically, the engineering of silicon architectures, the construction of silicon-based composites, and other performance-enhancement studies including electrolytes and binders. The burgeoning research efforts in the development of practical silicon electrodes, and full-cell silicon-based LIBs are specially stressed, which are key to the successful commercialization of silicon anodes, and large-scale deployment of next-generation high energy density LIBs.
由于硅具有极高的比容量,因此作为锂离子电池(LIB)的负极材料受到了广泛研究。然而,硅基负极材料在充放电过程中通常会发生较大的体积变化,导致硅随后粉化、电接触丧失以及持续的副反应。这些转变导致循环寿命较差,并阻碍了硅在LIBs中的广泛商业化。锂化和脱锂行为以及界面反应机制正在逐步得到研究和理解。据报道,与商业碳基负极相比,各种纳米结构的硅负极均表现出优异的比容量和循环寿命。然而,纳米结构硅的一些实际问题不容忽视,如果要在商业LIBs中广泛使用,就必须加以解决。本综述概述了硅基负极方面的主要重要工作以及该领域的最新研究方向,特别是硅结构的设计、硅基复合材料的构建以及包括电解质和粘结剂在内的其他性能增强研究。特别强调了在实用硅电极和全电池硅基LIBs开发方面蓬勃发展的研究工作,这是硅负极成功商业化以及下一代高能量密度LIBs大规模部署的关键。