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All-solid-state batteries are intensively investigated, although their performance is not yet satisfactory for large-scale applications. In this context, the combination of Li10GeP2S12 solid electrolyte and LiNi1-x-yCoxMnyO2 positive electrode active materials is considered promising despite the yet unsatisfactory battery performance induced by the thermodynamically unstable electrode|electrolyte interface. Here, we report electrochemical and spectrometric studies to monitor the interface evolution during cycling and understand the reactivity and degradation kinetics. We found that the Wagner-type model for diffusion-controlled reactions describes the degradation kinetics very well, suggesting that electronic transport limits the growth of the degradation layer formed at the electrode|electrolyte interface. Furthermore, we demonstrate that the rate of interfacial degradation increases with the state of charge and the presence of two oxidation mechanisms at medium (3.7 V vs. Li+/Li +/Li) and high (E ≥ 4.2 V vs. Li+/Li) potentials. A high state of charge (>80%) triggers the structural instability and oxygen release at the positive electrode and leads to more severe degradation.
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Tong‐Tong Zuo
Raffael Rueß
Ruijun Pan
Nature Communications
SHILAP Revista de lepidopterología
The University of Texas at Austin
Tokyo Institute of Technology
Justus-Liebig-Universität Gießen
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Zuo et al. (Thu,) studied this question.
www.synapsesocial.com/papers/69d76072f182769aa8b8ad0c — DOI: https://doi.org/10.1038/s41467-021-26895-4