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(Invited) A Brief Understanding of Conduction Ions Transport Physics in Solid State Electrolytes

机译:(邀请)简要了解固态电解质中的传导离子输送物理学

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Solid state electrolytes refer to a type of solid materials whose conductivity is close to (or in some cases exceeds) the molten salt and electrolyte. It refers to a special state with liquid-solid duality where conduction ions have near-liquid mobility, while other ions maintain regular crystal arrangement. This liquid-solid duality is attracting the attention of Condensed Matter Physicists. Typical solid electrolyte materials, as a separate phase with novelty, generally have the following features: high ionic conductivity, low activation energy and open structure crystal. This open structure has a network of interconnected empty sites that the ions can occupy. In addition, fast ion conductors have important dynamic and collective effects: they do not have clear optical lattice modes, but there are diffuse low-energy excitations, frequency-dependent conductivity infrared peak, anomalous pre-NMR. phase transitions and a high probability of finding moving ions between two allowable positions. Considering basic research, the core problem of solid electrolytes is the transport of ions on the bulk phase, surface, and interface. This report will introduce the history of research on transport physics in several typical solid electrolyte systems, focusing on combining the work carried out by myself and partners to introduce the major progress in this area in recent years. At the same time, the role of computational physics/materials in the research of solid electrolyte materials is prospected.
机译:固态电解质指的是一种固体材料,其电导率接近(或在某些情况下超过)熔融盐和电解质。它是指具有液体固体二元性的特殊状态,其中传导离子具有近液体迁移率,而其他离子保持规则的晶体布置。这种液体固体的二元性吸引了凝聚态物理学家的注意力。典型的固体电解质材料,作为单独的具有新颖性,通常具有以下特征:高离子电导率,低激活能量和开放结构晶体。这种开放结构具有相互连接的空网站的网络,即离子可以占据。此外,快速离子导体具有重要的动态和集体效果:它们没有明确的光学晶格模式,但存在漫反射的低能量激励,频率依赖性电导率红外峰,异常预态。相位转换和在两个允许位置之间找到移动离子的高概率。考虑到基础研究,固体电解质的核心问题是在体相,表面和界面上运输离子。本报告将介绍几种典型的固体电解质系统中运输物理学研究历史,重点是结合自己和合作伙伴在近年来介绍了这一领域的重大进展。同时,展望计算物理/材料在固体电解质材料的研究中的作用进行了展望。

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