材料科学
阴极
桥接(联网)
氧化物
再分配(选举)
电池(电)
密度泛函理论
理论(学习稳定性)
表面能
动力学
电阻和电导
接触电阻
导线
纳米技术
带隙
能量(信号处理)
图层(电子)
能量密度
化学物理
复合材料
电极
分子动力学
活化能
等效串联电阻
势能
作者
Da Wang,Yaqiao Luo,Jia Yu,Gaozhan Liu,Jian‐Fang Wu,Xiaobin Yin,Bingxu Chen,Wei Zhang,Xiayin Yao,Maxim Avdeev,Liquan Chen,Siqi Shi
摘要
ABSTRACT Interfacial reconstruction and its associated high resistance govern the performance of all‐solid‐state batteries (ASSBs). However, indirectly inferring interfacial potentials from bulk band alignments masks the true solid–solid electrochemistry, causing orders‐of‐magnitude discrepancies in predicting space‐charge layer (SCL) resistances and impeding interface screening. Herein, by traversing 310 distinct interfaces from ∼29,000 literatures, we develop a non‐empirical numerical procedure that directly maps lithium‑ion redistribution to interfacial resistance by integrating ligand‑field theory with the SCL model. Considering electric potential differences and intrinsic carrier properties during interfacial reconstruction via a modified ligand‐field splitting strength (MLFSS) descriptor yields unprecedented bridging between modeling and measurement, reducing predicted resistance discrepancies from over ten orders of magnitude to within two. On this basis, we resolve the highly system‐dependent controversy over oxide interfacial resistances by identifying extreme MLFSS disparities (>3.5 eV) as the decisive factor, while emphasizing ion‑intercalation sulfides (<0.2 eV) as cathodes for their intrinsic SCL suppression. The predictive capability of this tunable criterion is validated in an all‐sulfide V 0.5 Cr 1.5 S 4 /Li 10 GeP 2 S 12 /75% Li 2 S‐24% P 2 S 5 –1% P 2 O 5 /Li prototype. The resulting ultralow interfacial resistance of 8.8 Ω cm 2 ensures superior cycling stability at an active‐material energy density of 562 Wh kg −1 , establishing a practical paradigm for breaking the energy and kinetics trade‐off in ASSBs.
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