尖晶石
电解质
阴极
材料科学
电压
锂(药物)
高压
纳米技术
分解
离子
工程物理
电极
化学工程
化学
电气工程
物理化学
冶金
物理
工程类
内分泌学
医学
有机化学
作者
Jung Hyun Kim,Nicholas P. W. Pieczonka,Li Yang
出处
期刊:ChemPhysChem
[Wiley]
日期:2014-05-23
卷期号:15 (10): 1940-1954
被引量:225
标识
DOI:10.1002/cphc.201400052
摘要
Abstract Lithium‐ion (Li‐ion) batteries have been developed for electric vehicle (EV) applications, owing to their high energy density. Recent research and development efforts have been devoted to finding the next generation of cathode materials for Li‐ion batteries to extend the driving distance of EVs and lower their cost. LiNi 0.5 Mn 1.5 O 4 (LNMO) high‐voltage spinel is a promising candidate for a next‐generation cathode material based on its high operating voltage (4.75 V vs. Li), potentially low material cost, and excellent rate capability. Over the last decade, much research effort has focused on achieving a fundamental understanding of the structure–property relationship in LNMO materials. Recent studies, however, demonstrated that the most critical barrier for the commercialization of high‐voltage spinel Li‐ion batteries is electrolyte decomposition and concurrent degradative reactions at electrode/electrolyte interfaces, which results in poor cycle life for LNMO/graphite full cells. Despite scattered reports addressing these processes in high‐voltage spinel full cells, they have not been consolidated into a systematic review article. With this perspective, emphasis is placed herein on describing the challenges and the various approaches to mitigate electrolyte decomposition and other degradative reactions in high‐voltage spinel cathodes in full cells.
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