Zou Zhenyu, Xu Hantao, Zhang Huanrui, Tang Yue, Cui Guanglei
College of Chemistry, Chemical Engineering and Materials Science, Shandong Normal University, Jinan 250014, China.
Qingdao Industrial Energy Storage Research Institute, Qingdao Institute of Bioenergy and Bioprocess Technology, Chinese Academy of Sciences, Qingdao 266101, China.
ACS Appl Mater Interfaces. 2020 May 13;12(19):21368-21385. doi: 10.1021/acsami.0c02516. Epub 2020 Apr 28.
High voltage spinel manganese oxide LiNi.MnO (LNMO) cathodes are promising for practical applications owing to several strengths including high working voltages, excellent operating safety, low costs, and so on. However, LNMO-based lithium-ion batteries (LIBs) fade rapidly mainly owing to unqualified electrolytes, hence becoming a big obstacle toward practical applications. To tackle this roadblock, substantial progress has been made thus far, and yet challenges still remain, while rare reviews have systematically discussed the status quo and future development of electrolyte optimization coupling with LNMO cathodes. Here, we discuss cycling degradation mechanisms at the cathode/electrolyte interface and ideal requirements of electrolytes for LNMO cathode-equipped LIBs, as well as review the recent advance of electrolyte optimization for LNMO cathode-equipped LIBs in detail. And then, the perspectives regarding the future research opportunities in developing state-of-the-art electrolytes are also presented. The authors hope to shed light on the rational optimization of advanced organic electrolytes in order to boost the large-scale practical applications of high voltage LNMO cathode-based LIBs.
高压尖晶石锰氧化物LiNi.MnO(LNMO)阴极因其具有高工作电压、出色的操作安全性、低成本等多种优势,在实际应用中颇具前景。然而,基于LNMO的锂离子电池(LIBs)主要由于电解质不合格而迅速衰退,因此成为实际应用的一大障碍。为解决这一障碍,目前已取得了显著进展,但挑战依然存在,而很少有综述系统地讨论与LNMO阴极耦合的电解质优化的现状和未来发展。在此,我们讨论了阴极/电解质界面处的循环降解机制以及配备LNMO阴极的LIBs对电解质的理想要求,并详细综述了配备LNMO阴极的LIBs电解质优化的最新进展。然后,还介绍了关于开发先进电解质未来研究机会的观点。作者希望为先进有机电解质的合理优化提供思路,以推动基于高压LNMO阴极的LIBs的大规模实际应用。