Amorphous oxyhalides have emerged as promising solid-state electrolytes (SSEs) owing to their structural flexibility and high ionic conductivity. However, the origins of fast Li+ transport in these disordered structures remain unclear. Here, atomistic simulations reveal the microscopic mechanisms governing Li+ diffusion in amorphous xLi2O–TaCl5 electrolytes. We identified two synergistic structural factors that control ion transport: (i) a stable, interconnected oxygen-bridged framework of Ta polyhedra, which forms continuous diffusion pathways; and (ii) reduced Li–Cl coordination, which alleviates local confinement. Together, these features enhance the connectivity of the Li+ diffusion pathways and promote correlated Li+ migration. To validate and further amplify these effects, F is substituted into the amorphous oxyhalide. The optimized composition (LTOC-8%F) exhibits enhanced structural characteristics consistent with this mechanism, and a corresponding elevated theoretical room-temperature ionic conductivity of 7.22 mS cm−1. This study reveals the origins of fast ion transport in amorphous oxyhalide SSEs and establishes a mechanism-informed design strategy.
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Energy Materials and Devices 2026, 4(2): 9370097
Published: 15 June 2026
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