Wang Xiao-Tong, Gu Zhen-Yi, Li Wen-Hao, Zhao Xin-Xin, Guo Jin-Zhi, Du Kai-Di, Luo Xiao-Xi, Wu Xing-Long
National & Local United Engineering Laboratory for Power Batteries, Faculty of Chemistry, Northeast Normal University, Changchun, Jilin 130024, P.R. China.
Key Laboratory for UV Light-Emitting Materials and Technology of Ministry of Education, Northeast Normal University, Changchun, Jilin 130024, P.R. China.
Chem Asian J. 2020 Sep 15;15(18):2803-2814. doi: 10.1002/asia.202000522. Epub 2020 Jul 7.
As the power supply of the prosperous new energy products, advanced lithium ion batteries (LIBs) are widely applied to portable energy equipment and large-scale energy storage systems. To broaden the applicable range, considerable endeavours have been devoted towards improving the energy and power density of LIBs. However, the side reaction caused by the close contact between the electrode (particularly the cathode) and the electrolyte leads to capacity decay and structural degradation, which is a tricky problem to be solved. In order to overcome this obstacle, the researchers focused their attention on electrolyte additives. By adding additives to the electrolyte, the construction of a stable cathode-electrolyte interphase (CEI) between the cathode and the electrolyte has been proven to competently elevate the overall electrochemical performance of LIBs. However, how to choose electrolyte additives that match different cathode systems ideally to achieve stable CEI layer construction and high-performance LIBs is still in the stage of repeated experiments and exploration. This article specifically introduces the working mechanism of diverse electrolyte additives for forming a stable CEI layer and summarizes the latest research progress in the application of electrolyte additives for LIBs with diverse cathode materials. Finally, we tentatively set forth recommendations on the screening and customization of ideal additives required for the construction of robust CEI layer in LIBs. We believe this minireview will have a certain reference value for the design and construction of stable CEI layer to realize desirable performance of LIBs.
作为蓬勃发展的新能源产品的电源,先进的锂离子电池(LIBs)被广泛应用于便携式能源设备和大规模储能系统。为了拓宽其适用范围,人们在提高锂离子电池的能量和功率密度方面付出了巨大努力。然而,电极(特别是阴极)与电解质之间的紧密接触所引发的副反应会导致容量衰减和结构退化,这是一个亟待解决的棘手问题。为了克服这一障碍,研究人员将注意力集中在电解质添加剂上。通过向电解质中添加添加剂,已证明在阴极和电解质之间构建稳定的阴极 - 电解质界面(CEI)能够有效提升锂离子电池的整体电化学性能。然而,如何理想地选择与不同阴极系统相匹配的电解质添加剂以实现稳定的CEI层构建和高性能的锂离子电池仍处于反复实验和探索阶段。本文具体介绍了各种电解质添加剂形成稳定CEI层的工作机制,并总结了电解质添加剂在具有不同阴极材料的锂离子电池应用中的最新研究进展。最后,我们初步提出了关于筛选和定制构建锂离子电池坚固CEI层所需理想添加剂的建议。我们相信这篇综述对于设计和构建稳定的CEI层以实现锂离子电池的理想性能具有一定的参考价值。