Unraveling Bridging‐Oxygen‐Driven Ultrafast Amorphization in Superionic Oxyhalide Conductors via in Situ Synchrotron X‐Ray Scattering

ABSTRACT The energy‐ and time‐consuming mechanochemical synthesis of high‐performance solid electrolytes (SEs) remains a critical bottleneck for the scaling of all‐solid‐state batteries. Despite the recognition that oxygen incorporation in structure serves as a viable strategy to develop high‐performance halide SEs, systematic investigations into how oxygen in structure modulates synthesis kinetics, local structure, and ion transport are scarce. Herein, we report the synthesis of amorphous oxyhalide NaTaOCl 4 as a model system, achieved via minute‐scale ball milling, a dramatic improvement over the multi‐day synthesis of conventional NaTaCl 6 . Complementary structural characterizations and ab initio molecular dynamics (AIMD) simulations demonstrate that, low‐coordinated bridging‐oxygen‐dominated Ta−O−Cl environments induce substantial lattice distortions, enabling ultrafast amorphization. Time‐resolved in situ synchrotron x‐ray scattering experiments reveal distinct reaction pathways: NaTaOCl 4 undergoes rapid fragmentation of precursors into metastable intermediates followed by bridging‐oxygen‐driven amorphous formation, whereas NaTaCl 6 experiences a moderate crystallization process prior to prolonged amorphization. By extending this design to a series of mixed‑anion oxyhalides, we establish a universal rapid synthesis strategy. For instance, NaTaO 0.5 Cl 5 exhibits high ionic conductivities of 3.39 mS cm −1 after only 30 min of ball‐milling. This work establishes a strategy that employs oxygen as a structural bridging‐agent to develop high‐conductivity SEs and provides atomic‐scale insights into ultrafast mechanochemical reaction.

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Publication Details

Journal
Angewandte Chemie
Published
2026-06-03
DOI
https://doi.org/10.1002/ange.7867809
Primary Topic
Advanced Battery Materials and Technologies
Type
article
Field-Weighted Citation Impact
0.00

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article

Unraveling Bridging‐Oxygen‐Driven Ultrafast Amorphization in Superionic Oxyhalide Conductors via in Situ Synchrotron X‐Ray Scattering

Anchun Tang, Y ZHAO, Zhepu Shi, Haosheng Li et al.
Angewandte Chemie
Advanced Battery Materials and Technologies
article

Unraveling Bridging‐Oxygen‐Driven Ultrafast Amorphization in Superionic Oxyhalide Conductors via in Situ Synchrotron X‐Ray Scattering

Anchun Tang, Y ZHAO, Zhepu Shi, Haosheng Li, Shuaika Liang, Jo-Chi Tseng, Jiuwei Lei, Jianghai Chen, S K Wang, Kaixin Zhang, Fiaz Hussain, Yujuan Yang, Qi Guo, Feilong Wang, Weihan Li, Wen Tang, Wei Xia, Chunyin Zhou, Zi‐Feng Ma, Xueliang Sun
article en

Abstract

ABSTRACT The energy‐ and time‐consuming mechanochemical synthesis of high‐performance solid electrolytes (SEs) remains a critical bottleneck for the scaling of all‐solid‐state batteries. Despite the recognition that oxygen incorporation in structure serves as a viable strategy to develop high‐performance halide SEs, systematic investigations into how oxygen in structure modulates synthesis kinetics, local structure, and ion transport are scarce. Herein, we report the synthesis of amorphous oxyhalide NaTaOCl 4 as a model system, achieved via minute‐scale ball milling, a dramatic improvement over the multi‐day synthesis of conventional NaTaCl 6 . Complementary structural characterizations and ab initio molecular dynamics (AIMD) simulations demonstrate that, low‐coordinated bridging‐oxygen‐dominated Ta−O−Cl environments induce substantial lattice distortions, enabling ultrafast amorphization. Time‐resolved in situ synchrotron x‐ray scattering experiments reveal distinct reaction pathways: NaTaOCl 4 undergoes rapid fragmentation of precursors into metastable intermediates followed by bridging‐oxygen‐driven amorphous formation, whereas NaTaCl 6 experiences a moderate crystallization process prior to prolonged amorphization. By extending this design to a series of mixed‑anion oxyhalides, we establish a universal rapid synthesis strategy. For instance, NaTaO 0.5 Cl 5 exhibits high ionic conductivities of 3.39 mS cm −1 after only 30 min of ball‐milling. This work establishes a strategy that employs oxygen as a structural bridging‐agent to develop high‐conductivity SEs and provides atomic‐scale insights into ultrafast mechanochemical reaction.

Angewandte Chemie
Nanyang Technological University (SG), Shanghai Jiao Tong University (CN), Chinese Academy of Sciences (CN), Japan Synchrotron Radiation Research Institute (JP), Shanghai Advanced Research Institute (CN), Ningbo Institute of Industrial Technology (CN)
National Natural Science Foundation of China
Affordable and clean energy
Openalex Percentile: Top 10%
Advanced Battery Materials and Technologies
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