材料科学
复合数
离子电导率
限制电流
电解质
微观结构
电导率
曲折
阴极
复合材料
快离子导体
电极
电池(电)
纳米技术
电化学
多孔性
功率(物理)
电气工程
热力学
工程类
物理
物理化学
化学
作者
Anja Bielefeld,Dominik A. Weber,Jürgen Janek
标识
DOI:10.1021/acsami.9b22788
摘要
In the pursuit for future mobility, solid-state batteries open a wide field of promising battery concepts with a variety of advantages, ranging from energy density to power capability. However, trade-offs need to be addressed, especially for large-scale, cost-effective processing, which implies the use of a polymeric binder in the composite electrodes. Here, we investigate three-dimensional microstructure models of the active material, solid electrolyte, and binder to link cathode design and binder content with electrode performance. Focusing on lithium-ion transport, we evaluate the effective ionic conductivity and tortuosity in a flux-based simulation. Therein, we address the influence of electrode composition and active material particle size as well as the process-controlled design parameters of the void space and binder content. Even though added in small amounts, the latter has a strong negative influence on the ion transport paths and the active surface area. The simulation of ion transport within four-phase composites is supplemented by an estimation of the limiting current densities, illustrating that application-driven cell design starts at the microstructure level.
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