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◆ ACS Energy Letters2026-01-31· Fast ion conductor

Microscopic Mechanisms of Superionic Na-ion Conductivity in Crystalline and Amorphous NaMOCl <sub>4</sub> (M = Nb, Ta) Solid Electrolytes

Grace Wei, Luca Binci, Gerbrand Ceder

原始摘要(英文原文)· Original abstract
High Resolution Image Download MS PowerPoint Slide Sodium-ion solid electrolytes offer a sustainable route toward next-generation batteries, but few match the performance of their lithium counterparts. Halide-based NaMOCl 4 (M = Nb, Ta) has recently emerged as a promising analogue to LiMOCl 4, yet its structure–transport relationships remain unclear due to poor crystallinity in experiments. Here, we combine density functional theory and machine-learned molecular dynamics to reveal that crystalline NaMOCl 4 exhibits negligible room-temperature conductivity with high activation barriers arising from vacancy-mediated diffusion below an order–disorder transition. Above this transition, rotational and translational motion of the [MO 2/2 Cl 4 – ] ∞ chains create new Na sites and enhances transport. In contrast, the amorphous phase inherently supports facile, three-dimensional Na diffusion through dynamic framework flexibility. These results show that ordered crystalline phases hinder ionic transport, while disorder – either thermally induced or structural – facilitates it, revising prior assumptions from the Li system and providing design principles for high-conductivity Na halide electrolytes.
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Microscopic Mechanisms of Superionic Na-ion Conductivity in Crystalline and Amorphous NaMOCl <sub>4</sub> (M = Nb, Ta) Solid Electrolytes — 科研速览 Science Skim