晶界
材料科学
锂(药物)
离子电导率
钛酸锂
化学物理
电解质
电导率
镧
快离子导体
离子键合
空间电荷
透射电子显微镜
离子
纳米技术
电子
无机化学
微观结构
锂离子电池
复合材料
物理化学
热力学
化学
物理
电极
功率(物理)
有机化学
内分泌学
电池(电)
医学
量子力学
作者
Shang Peng,Yongjin Chen,Xuefeng Zhou,Mingxue Tang,Jianbo Wang,Hua Wang,Lin Guo,Lujun Huang,Wenge Yang,Xiang Gao
标识
DOI:10.1016/j.jmat.2023.12.008
摘要
Lanthanum lithium titanate is one of the promising electrolytes for solid-state lithium-ion batteries due to its high bulk ionic conductivity up to ∼10−3 S/cm. However, the practical application of this material has been bottlenecked by high grain boundary (GB) resistance, while the underlying mechanism is still under debate. Here we report a comprehensive study with direct evidence to reveal the origin of high GB resistance in La2/3–xLi3xTiO3 (LLTO). Atomic-scale observations via advanced scanning transmission electron microscopy show that the GBs are uniformly subject to subsurface segregation of La atoms to compensate for the excess surface charges. The La segregation leads to an abrupt decrease of charge carrier concentration neighboring GBs and hence is supposed to have deleterious effect on GB conductivity. The findings suggest a novel mechanism of space-charge-induced cation segregation, which shed lights on the intrinsic origin of low GB ionic conductivity in LLTO.
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