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DOE OSTI · 1812022

Linking void and interphase evolution to electrochemistry in solid-state batteries using operando X-ray tomography

Abstract

Despite progress in solid-state battery engineering, our understanding of the chemo-mechanical phenomena that govern electrochemical behavior and stability at solid-solid interfaces remains limited compared to solid-liquid interfaces. Here, we use operando synchrotron X-ray computed microtomography to investigate the evolution of lithium/solid-state electrolyte interfaces during battery cycling, revealing how the complex interplay among void formation, interphase growth, and volumetric changes determines cell behavior. Void formation during lithium stripping is directly visualized in symmetric cells, and the loss of contact that drives current constriction at the interface between lithium and the solid-state electrolyte (Li10SnP2S12) is quantified and found to be the primary cause of cell failure. The interphase is found to be redox-active upon charge, and global volume changes occur due to partial molar volume mismatches at either electrode. Finally, these results provide new insight into how chemo-mechanical phenomena can impact cell performance, which is necessary to understand for the development of solid-state batteries.

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BibTeXRIS

Lewis, John A., Cortes, Francisco Quintero, Liu, Yuhgene, Miers, John C., Verma, Ankit, Vishnugopi, Bairav S., Tippens, Jared, Prakash, Dhruv, Marchese, Thomas S., Han, Sang Yun, Lee, Chanhee, Shetty, Pralav P., Lee, Hyun-Wook, Shevchenko, Pavel, De Carlo, Francesco, Saldana, Christopher, Mukherjee, Partha P., McDowell, Matthew T.. 2021-01-28. Linking void and interphase evolution to electrochemistry in solid-state batteries using operando X-ray tomography. https://doi.org/10.1038/s41563-020-00903-2

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