空间电荷
离子
电解质
原子单位
电荷(物理)
晶界
化学物理
材料科学
耗尽区
快离子导体
空格(标点符号)
纳米技术
原子物理学
化学
电子
图层(电子)
物理
微观结构
计算机科学
物理化学
复合材料
电极
量子力学
操作系统
作者
Zhenqi Gu,Jiale Ma,Feng Zhu,Ting Liu,Kai Wang,Nan Chen,Zhenyu Li,Cheng Ma
标识
DOI:10.1038/s41467-023-37313-2
摘要
Space-charge layers are frequently believed responsible for the large resistance of different interfaces in all-solid-state Li batteries. However, such propositions are based on the presumed existence of a Li-deficient space-charge layer with insufficient charge carriers, instead of a comprehensive investigation on the atomic configuration and its ion transport behavior. Consequently, the real influence of space-charge layers remains elusive. Here, we clarify the role of space-charge layers in Li0.33La0.56TiO3, a prototype solid electrolyte with large grain-boundary resistance, through a combined experimental and computational study at the atomic scale. In contrast to previous speculations, we do not observe the Li-deficient space-charge layers commonly believed to result in large resistance. Instead, the actual space-charge layers are Li-excess; accommodating the additional Li+ at the 3c interstitials, such space-charge layers allow for rather efficient ion transport. With the space-charge layers excluded from the potential bottlenecks, we identify the Li-depleted grain-boundary cores as the major cause for the large grain-boundary resistance in Li0.33La0.56TiO3.
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