Conceptualizing Surface-Like Diffusion for Ultrafast Ionic Conduction in Solid-State Materials.

IF 7.5 2区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY ChemSusChem Pub Date : 2024-11-19 DOI:10.1002/cssc.202401886
Jingxi Zhang, Yanhao Dong, Chang-An Wang
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Abstract

Surface-like diffusion is a recently proposed concept to explain the mechanism of ultrafast ionic conduction in high-rate oxide (e. g., niobium oxides and their alloys with TiO2 and WO3) and framework materials (e. g., Prussian blue analogs). This perspective seeks to illustrate the structural origin, theoretical foundation, and experimental evidences of surface-like diffusion. Unlike classical lattice diffusion, which typically involves ionic hopping between adjacent interstitial sites in solids, surface-like diffusion occurs when ions-that are significantly smaller than the interstitials-migrate along the off-center path in the diffusion channel. This mechanism results in an exceptionally low activation energy (Ea) down to 0.2 eV, which is crucial for achieving high-rate performance in electrochemical devices such as lithium-ion and sodium-ion batteries. This concept review also discusses the criteria to identify materials with potential surface-like diffusion and outlines theoretical and experimental tools to capture such phenomenon. Several candidates for further investigation are proposed based on the current understanding of the mechanism.

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固态材料中超高速离子传导的类表面扩散概念化。
类表面扩散是最近提出的一个概念,用于解释高速率氧化物(如铌氧化物及其与 TiO2 和 WO3 的合金)和框架材料(如普鲁士蓝类似物)中的超快离子传导机制。这一视角旨在说明类表面扩散的结构起源、理论基础和实验证据。经典的晶格扩散通常涉及固体中相邻间隙位点之间的离子跳跃,与之不同的是,当离子(比间隙小得多)沿着扩散通道中的偏离中心路径迁移时,就会发生类表面扩散。这种机制可使活化能(Ea)低至 0.2 eV,这对实现锂离子和钠离子电池等电化学设备的高速率性能至关重要。本概念综述还讨论了识别具有潜在表面样扩散的材料的标准,并概述了捕捉这种现象的理论和实验工具。根据目前对该机制的理解,提出了几种供进一步研究的候选材料。
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来源期刊
ChemSusChem
ChemSusChem 化学-化学综合
CiteScore
15.80
自引率
4.80%
发文量
555
审稿时长
1.8 months
期刊介绍: ChemSusChem Impact Factor (2016): 7.226 Scope: Interdisciplinary journal Focuses on research at the interface of chemistry and sustainability Features the best research on sustainability and energy Areas Covered: Chemistry Materials Science Chemical Engineering Biotechnology
期刊最新文献
A Solid Electrolyte Based on Sodium-doped Li4-xNaxTi5O12 with PVDF for Solid State Lithium Metal Battery. Cascade Catalytic Systems for Converting CO2 into C2+ Products. Exploiting Acetal Moieties for the Synthesis of Degradable-on-Demand Polymeric Architectures. Conceptualizing Surface-Like Diffusion for Ultrafast Ionic Conduction in Solid-State Materials. Elucidating 'Transfer-Lithiation' from Graphite to Si within Composite Anodes during Pre-Lithiation and Regular Charging.
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