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原子态密度揭示超离子导体中的受挫现象。

Frustration in Super-Ionic Conductors Unraveled by the Density of Atomistic States.

机构信息

Department of Materials Science and Engineering, University of Maryland, College Park, MD 20742, USA.

Maryland Energy Innovation Institute, University of Maryland, College Park, MD 20742, USA.

出版信息

Angew Chem Int Ed Engl. 2023 Apr 3;62(15):e202215544. doi: 10.1002/anie.202215544. Epub 2023 Feb 23.

Abstract

The frustration in super-ionic conductors enables their exceptionally high ionic conductivities, which are desired for many technological applications including batteries and fuel cells. A key challenge in the study of frustration is the difficulties in analyzing a large number of disordered atomistic configurations. Using lithium super-ionic conductors as model systems, we propose and demonstrate the density of atomistic states (DOAS) analytics to quantitatively characterize the onset and degree of disordering, reveal the energetics of local disorder, and elucidate how the frustration enhances diffusion through the broadening and overlapping of the energy levels of atomistic states. Furthermore, material design strategies aided by the DOAS are devised and demonstrated for new super-ionic conductors. The DOAS is generally applicable analytics for unraveling fundamental mechanisms in complex atomistic systems and guiding material design.

摘要

在超离子导体中,结构上的扭曲能使其具有极高的离子电导率,这是许多技术应用(包括电池和燃料电池)所期望的特性。在研究结构扭曲时面临的一个关键挑战是分析大量无序原子构型的困难。我们以锂离子超离子导体为模型系统,提出并展示了原子态密度(atomistic states density of,DOAS)分析方法,用于定量描述无序的起始和程度,揭示局部无序的能量学,并阐明结构扭曲如何通过原子态能级的展宽和重叠来增强扩散。此外,还设计并展示了借助 DOAS 的材料设计策略,用于开发新型超离子导体。DOAS 是一种普遍适用的分析方法,可用于揭示复杂原子体系中的基本机制,并指导材料设计。

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