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Anisotropic Swelling Governed by Orientation-Dependent Interfacial Na Diffusion in Single-Crystalline Sb

机译:通过单晶Sb的取向依赖性界面Na扩散来治理各向异性肿胀

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摘要

The anisotropic volume expansion of anode materials produces locally inhomogeneous residual stresses, which frequently induce fracture of the anode materials and reduce battery capacity and cycle life. Much of our understanding of the anisotropic swelling behavior of anode materials is based on electron microscopy and macroscopic structural analysis techniques, which are insufficient to elucidate the atomistic origin of the anisotropic swelling behavior. In this study, we perform in situ sodiation experiments with single-crystalline Sb anodes followed by atomic simulations to determine the diffusion kinetics governing the sodiation of Sb and its associated swelling behavior. In situ sodiation experiments demonstrate that the rate of diffusion of Na into single-crystalline Sb anodes differs by more than a factor of 2 depending on the orientation of the Sb crystal, causing the crystal to swell anisotropically. This observed anisotropic diffusion is explained here by determining the orientation-dependent diffusion kinetics, while the associated structural origins are clarified by studying the interfacial Na diffusion in the atomically thin layer preceding the advancing interface.
机译:阳极材料的各向异性体积膨胀产生局部不均匀的残余应力,其经常诱导阳极材料的骨折并降低电池容量和循环寿命。我们对阳极材料的各向异性肿胀行为的大部分理解基于电子显微镜和宏观结构分析技术,这不足以阐明各向异性溶胀行为的原子原因。在该研究中,我们以单晶Sb阳极进行原位调解实验,然后进行原子模拟,以确定调解Sb和其相关肿胀行为的扩散动力学。原位调解实验表明,根据Sb晶体的取向,Na进入单晶Sb阳极的扩散速率与2多倍的相差,导致晶体各向异性膨胀。这里通过确定取向依赖性扩散动力学来解释该观察到的各向异性扩散,而通过研究前进界面前一体的原子薄层中的界面Na扩散阐明了相关的结构起源。

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