电解质
钝化
阴极
材料科学
润湿
相间
降级(电信)
化学工程
解耦(概率)
阳极
能量密度
电流密度
表面能
化学
分解
锂(药物)
作者
Daniel Córdoba,Matthew Li,Xiaozhou Huang,Yanan Gao,Shoichi Matsuda,Ernesto J. Calvo,Khalil Amine,Yanan Gao,Shoichi Matsuda,Ernesto Julio Calvo
标识
DOI:10.1149/1945-7111/ae1ea5
摘要
The operation of lithium-oxygen (Li-O 2 ) batteries under lean electrolyte conditions offers higher energy density but leads to rapid degradation and short cycle life. Although cathode passivation and electrolyte decomposition occur in all regimes, we show that under lean electrolyte conditions, failure is primarily driven by progressive electrolyte consumption at the lithium/solid electrolyte interphase (SEI), rather than by irreversible cathode passivation. Poor wetting of the lithium surface results in heterogeneous SEI growth and high local current densities, which accelerate electrolyte loss and cell failure. Strategies aimed at improving interfacial stability, including optimized wetting and SEI forming additives, significantly extend cycle life without compromising energy density. Our results establish anode-electrolyte interactions as the dominant degradation mechanism under lean electrolyte conditions, and emphasize the need to engineer a stable Li/SEI interface for long-lasting Li-O 2 batteries.
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