Hotspot to Homogeneous: Amorphous Interfacial Current Redistribution Enables Stable Solid-State Lithium-Metal Batteries

Abstract Interfacial instability in oxide ceramic electrolyte (OCE)-based solid-state lithium metal batteries (SSLMBs) is conventionally attributed to chemical incompatibility or mechanical failure, yet the underlying atomic-scale mechanisms remain elusive. Here, we reveal that grain boundaries (GBs) in polycrystalline OCEs function as bipolar interfacial hotspots, accelerating three degradation pathways: lowering barriers for Li dendrite nucleation and enabling electron-leakage-driven reduction at anode side, while generating localized overpotentials for cathode phase transformation. To deactivate these GB-driven hotspots, we develop a laser-induced amorphization strategy that constructs a GB-free amorphous interlayer capable of homogenizing Li + flux and blocking electron migration. Applied to a representative sodium superionic conductor-type electrolyte, Li 1.3 Al 0.3 Ti 1.7 (PO 4 ) 3 , this approach delivers substantially increased critical current density in Li symmetric cells (1.4 to 2.4 mA cm −2 ) with stable cycling over 2000 h, and achieves an exceptional capacity retention of 101.9 mAh g −1 after 800 cycles in LiCoO 2 full cells operated at 4.5 V. The generality of this strategy is further validated on garnet-type and perovskite-type OCEs. This work introduces amorphous interfacial current redistribution as a universal paradigm for engineering stable interfaces, providing a critical atomic-scale interface engineering route to unlock high-voltage, dendrite-free SSLMBs.

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Publication Details

Journal
Nano-Micro Letters
Published
2026-08-27
DOI
https://doi.org/10.1007/s40820-026-02347-w
Primary Topic
Advanced Battery Materials and Technologies
Type
article
Field-Weighted Citation Impact
0.00

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article

Hotspot to Homogeneous: Amorphous Interfacial Current Redistribution Enables Stable Solid-State Lithium-Metal Batteries

Rongliang Yang, Ruohan Yu, Molong Duan, Cuiyun Yang et al.
Nano-Micro Letters
Advanced Battery Materials and Technologies
article

Hotspot to Homogeneous: Amorphous Interfacial Current Redistribution Enables Stable Solid-State Lithium-Metal Batteries

Rongliang Yang, Ruohan Yu, Molong Duan, Cuiyun Yang, Chenghao Yang, Yexin Pan, Rongliang Yang, Huan Liu, Qimeng Zhang, Ziyi Zhu, Mitch Guijun Li, Chenghao Yang, Xupeng Lu, Huan Liu, Qimeng Zhang, Xupeng Lu, Mitch Guijun Li, Ziyi Zhu
article en

Abstract

Abstract Interfacial instability in oxide ceramic electrolyte (OCE)-based solid-state lithium metal batteries (SSLMBs) is conventionally attributed to chemical incompatibility or mechanical failure, yet the underlying atomic-scale mechanisms remain elusive. Here, we reveal that grain boundaries (GBs) in polycrystalline OCEs function as bipolar interfacial hotspots, accelerating three degradation pathways: lowering barriers for Li dendrite nucleation and enabling electron-leakage-driven reduction at anode side, while generating localized overpotentials for cathode phase transformation. To deactivate these GB-driven hotspots, we develop a laser-induced amorphization strategy that constructs a GB-free amorphous interlayer capable of homogenizing Li + flux and blocking electron migration. Applied to a representative sodium superionic conductor-type electrolyte, Li 1.3 Al 0.3 Ti 1.7 (PO 4 ) 3 , this approach delivers substantially increased critical current density in Li symmetric cells (1.4 to 2.4 mA cm −2 ) with stable cycling over 2000 h, and achieves an exceptional capacity retention of 101.9 mAh g −1 after 800 cycles in LiCoO 2 full cells operated at 4.5 V. The generality of this strategy is further validated on garnet-type and perovskite-type OCEs. This work introduces amorphous interfacial current redistribution as a universal paradigm for engineering stable interfaces, providing a critical atomic-scale interface engineering route to unlock high-voltage, dendrite-free SSLMBs.

Nano-Micro LettersVol. 19(1)
Kunming University of Science and Technology (CN), City University of Hong Kong (HK), Hong Kong University of Science and Technology (HK), Sanya University (CN), University of Hong Kong (HK), South China University of Technology (CN)
Hong Kong University of Science and Technology, Fundamental Research Funds for the Central Universities, State Key Laboratory of Advanced Displays and Optoelectronics Technologies, Hong Kong University of Science and Technology
Openalex Percentile: Top 20%
Advanced Battery Materials and Technologies
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