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Li-Rich Layered Oxides and Their Practical Challenges: Recent Progress and Perspectives

机译:Li-Rich分层氧化物及其实用性挑战:最新进展和观点

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摘要

Lithium-rich layered oxides (LLOs), also known as Li_(1+x)M_(1-x)O2 or xLi2MnO3-(1-x)LiMO2 (M = Ni, Co, Mn), have been regarded as some of the highest capacity lithium cathodes and have attracted increasing attention from battery researchers and engineers in recent years. This is because LLOs possess maximum possible capacities of-280 to 310 mAh g~(-1) with a high working potential of~3.7 V (vs. Li~+/Li~0) and an astounding energy density of-900 Wh kg~(-1). Despite these promising properties, these technologically important cathodes have not yet been successfully commercialized due to low initial Coulombic efficiency, poor rate capabilities and gradual capacity/voltage fade during electrochemical cycling as well as further complications from continuous structural changes during cycling. Here, researchers have concluded that these issues mainly originate from the electrochemical activation of Li2MnO3 components, which, although it provides anomalously high capacity performances, also causes associated complex anionic redox activities of O and irreversible structural and phase transformations during charging at potentials greater than 4.5 V (vs. Li~+/Li~0). To provide perspectives, this review will summarize various attempts made towards addressing these issues and present the connections between electrochemical properties and structural change. In addition, this review will discuss redox chemistries and mechanistic behaviours during cycling and will provide future research directions to guide the commercialization of LLOs.
机译:富锂层状氧化物(LLOs),也被称为有限公司、锰),被视为一些高容量锂阴极和从电池吸引了越来越多的关注近年来研究人员和工程师。是因为LLOs拥有最大的可能吗能力- 280 310 mAh g ~(1)高工作的潜力~ 3.7 V(与李~ + /李~ 0)和一个惊人的能量密度- 900 Wh公斤~(1)。尽管这些有前途的属性,但这些技术重要的阴极尚未由于低成功商业化首次库仑效率,贫穷率功能和渐进的能力/电压消失在电化学循环以及进一步并发症持续的结构性变化在骑自行车。这些问题主要源自电化学活化Li2MnO3组件,,虽然它提供了异常高吗表演能力,也会造成相关复杂阴离子氧化还原O和活动不可逆的结构和相变在充电电位大于4.5 V(与李~ + /李~ 0)。回顾总结各种尝试对解决这些问题和呈现电化学性能之间的联系和结构的变化。将讨论氧化还原化学和机械的吗在自行车和将提供未来的行为研究方向指导LLOs的商业化。

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