材料科学
微晶
成核
弹性模量
复合材料
渗透(战争)
电解质
陶瓷
穿透深度
微观结构
电子
晶界
化学物理
热力学
冶金
电极
物理化学
光学
物理
化学
运筹学
量子力学
工程类
作者
Karnpiwat Tantratian,Hanghang Yan,Kevin Ellwood,Elisa T. Harrison,Lei Chen
标识
DOI:10.1002/aenm.202003417
摘要
Abstract Lithium dendrite penetration has been widely evidenced in ceramic solid electrolytes (SEs), which are expected to suppress Li dendrite formation due to their ultrahigh elastic modulus. This work aims to reveal the mechanism of Li penetration in polycrystalline SEs through electro‐chemo‐mechanical phase‐field model, using Li 7 La 3 Zr 2 O 12 (LLZO) as the model material. The results show the Li penetration patterns are influenced by both mechanical and electronic properties of the microstructures, i.e., grain boundaries (GBs). Li nucleates at the GB junctions on the Li/SE interface and propagates along the GB, at which the interfacial compressive stress is small due to the GB softening. Moreover, the excess trapped electrons at the GB may trigger isolated Li nucleation sites, abruptly increasing the Li penetration depth. High‐throughput simulations yield a phase map of Li penetration patterns under different trapped electrons concentrations and GB/grain elastic modulus mismatch. The map can quantitatively inform whether the mechanical or electronic properties dominate Li penetration morphologies, providing a strategy for the design of improved SE materials.
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