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Updated: Jun 6, 2026

Screening of Coatings for an All-Solid-State Battery Using In Situ Transmission Electron Microscopy
Published on: January 20, 2023
High-throughput discovery of Li3Sc2(PO4)3 as a protective coating for stabilizing mid-Ni NCM interfaces in
Ji Hoon Kim1, Seunghyun Lee2,3,4, Sang Uck Lee5
1School of Chemical Engineering, Sungkyunkwan University, Suwon, 16419, Republic of Korea.
Abstract:
As all-solid-state battery (ASSB) technologies continue to advance, interest has resurfaced in mid-nickel (mid-Ni) LiNixCoyMnzO2 (NCM; x = 0.5) cathodes due to their enhanced structural stability, reduced oxygen evolution, and higher capacities at elevated cutoff voltages compared to high-nickel compositions. However, interfacial degradation including parasitic reactions with solid-state electrolytes (SSEs) remains a major challenge. To address this issue, we conducted a high-throughput computational screening of oxide-based coating materials, evaluating their electrochemical stability, interfacial robustness, and Li-ion conductivity using Li-Li network descriptors. From this screening, 8 candidates were selected based on strict criteria. Among them, Li3Sc2(PO4)3 emerged as a particularly promising coating material, exhibiting strong electrochemical stability under high-voltage conditions (> 4 V) and substantial ionic conductivity (0.2 mS/cm), exceeding that of most oxide-type SSEs, as confirmed by ab initio molecular dynamics simulations. Furthermore, large-scale molecular dynamics simulations using a universal machine-learning interatomic potential demonstrate its ability to suppress surface degradation of mid-Ni NCM and prevent [PS4]3- decomposition in Li6PS5Cl, confirming its potential as a protective coating. These findings highlight the effectiveness of our computational screening strategy for coating-material discovery and underscore the potential of Li3Sc2(PO4)3 as a robust interfacial layer for stabilizing mid-Ni ASSBs.
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