阴极
材料科学
电化学
复合数
电解质
电池(电)
降级(电信)
化学工程
氧化还原
电化学动力学
电极
化学稳定性
复合材料
相容性(地球化学)
快离子导体
动力学
钾离子电池
电化学电池
工作(物理)
作者
Johannes Härtel,Tae-Hun Kim,Nina Nascimento Schürhoff,Marvin A. Kraft,Guopeng Han,Ruiyong Chen,Luke M. Daniels,Laurence J. Hardwick,Matthew J. Rosseinsky,Wolfgang G. Zeier
标识
DOI:10.1021/acsaem.5c03030
摘要
The development of solid electrolytes (SEs) for high-performance solid-state batteries (SSBs) requires not only favorable electrochemical stability but also interfacial compatibility with diverse cathode chemistries. In this study, we systematically benchmark recently discovered Li7Si2S7I against the well-established argyrodite Li5.5PS4.5Cl1.5 as an SE in composite cathodes. Despite exhibiting comparable oxidative stability, Li7Si2S7I demonstrates markedly different behaviors depending on the cathode chemistry. In composite cathodes with uncoated LiNi0.83Co0.11Mn0.06O2 as the cathode active material and Li7Si2S7I as the electrolyte, rapid degradation occurs, with capacity retention dropping to 5% after 30 cycles, driven by fast degradation kinetics and interfacial instability toward the formation of SiOx species as a thermodynamic sink. In contrast, sulfur–carbon–Li7Si2S7I composite cathodes show good performance in half-cells, comparable to that of the argyrodite benchmark. The reversible oxidative redox processes of Li7Si2S7I in sulfur-based systems highlight its promise for Li–S and other oxygen-free battery chemistries. Overall, this work emphasizes the importance of a holistic approach to SE evaluation, integrating chemical and electrochemical stability with degradation kinetics, to inform the rational design of next-generation SSB materials.
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