快离子导体
化学物理
离子电导率
离子
离子键合
扩散
电解质
材料科学
热传导
电导率
导电体
纳米技术
电极
化学
热力学
物理化学
物理
有机化学
复合材料
作者
Andrey D. Poletayev,James A. Dawson,M. Saïful Islam,Aaron M. Lindenberg
出处
期刊:Nature Materials
[Nature Portfolio]
日期:2022-07-28
卷期号:21 (9): 1066-1073
被引量:37
标识
DOI:10.1038/s41563-022-01316-z
摘要
Solid-state ionic conduction is a key enabler of electrochemical energy storage and conversion. The mechanistic connections between material processing, defect chemistry, transport dynamics, and practical performance are of considerable importance, but remain incomplete. Here, inspired by studies of fluids and biophysical systems, we re-examine anomalous diffusion in the iconic two-dimensional fast-ion conductors, the $\beta$- and $\beta^{\prime\prime}$-aluminas. Using large-scale simulations, we reproduce the frequency dependence of alternating-current ionic conductivity data. We show how the distribution of charge-compensating defects, modulated by processing, drives static and dynamic disorder, which lead to persistent sub-diffusive ion transport at macroscopic timescales. We deconvolute the effects of repulsions between mobile ions, the attraction between the mobile ions and charge-compensating defects, and geometric crowding on ionic conductivity. Our quantitative framework based on these model solid electrolytes connects their atomistic defect chemistry to macroscopic performance with minimal assumptions and enables mechanism-driven 'atoms-to-device' optimization of fast-ion conductors.
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