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DOE OSTI · 1649990

Hierarchical Defect Engineering for LiCoO 2 through Low-Solubility Trace Element Doping

Abstract

Real-world industry-relevant battery composite electrodes are hierarchically structured. Their structural and chemical complexity is featured by ubiquitous multi-scale porosity and cracks, solid-solid and solid-liquid interfaces, compositional and redox heterogeneity, as well as lattice disordering and deformation. In particular for the active cathode particles, which are the fundamental building blocks for the energy reservoir, it is a consensus that these structural and chemical defects could have a profound impact on the battery performance. An in-depth understanding of the underlying mechanisms could critically inform the cathode material engineering, which would have a tremendous potential but remains a daunting challenge at present. In this work, we tackle this question by studying LiCoO 2 (LCO) with trace doping of Ti, which exhibits a low solubility in the LCO layered lattice. Additionally, we observed the spontaneous and heterogeneous segregation of the dopant (Ti) across a wide range of length scales. In addition to the modification of the particle surface and the buried grain boundaries within the particle, we reveal that the Ti doping has induced a significant amount of lattice distortions, which, in turn, promotes the robustness of the LCO lattice at high state of charge (above 4.5V). Our result formulates a multi-scale defect engineering strategy that could be applicable to the synthesis of a broad range of energy materials for applications in batteries and beyond.

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BibTeXRIS

Hong, Yan-Shuai, Huang, Xiaojing, Wei, Chenxi, Wang, Junyang, Zhang, Jie-Nan, Yan, Hanfei, Chu, Yong S., Pianetta, Piero, Xiao, Ruijuan, Yu, Xiqian, Liu, Yijin, Li, Hong. 2020-08-11. Hierarchical Defect Engineering for LiCoO 2 through Low-Solubility Trace Element Doping. https://doi.org/10.1016/j.chempr.2020.07.017

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36 MATERIALS SCIENCE↗