Probing lattice defects in crystalline battery cathode using hard X-ray nanoprobe with data-driven modeling

被引:11
|
作者
Li, Jizhou [1 ]
Hong, Yanshuai [1 ,2 ]
Yan, Hanfei [3 ]
Chu, Yong S. [3 ]
Pianetta, Piero [1 ]
Li, Hong [2 ]
Ratner, Daniel [4 ]
Huang, Xiaojing [3 ]
Yu, Xiqian [2 ]
Liu, Yijin [1 ]
机构
[1] SLAC Natl Accelerator Lab, Stanford Synchrotron Radiat Lightsource, Menlo Pk, CA 94025 USA
[2] Chinese Acad Sci, Inst Phys, Beijing Adv Innovat Ctr Mat Genome Engn, Beijing 100190, Peoples R China
[3] Brookhaven Natl Lab, Natl Synchrotron Light Source 2, New York, NY 11973 USA
[4] SLAC Natl Accelerator Lab, Machine Learning Initiat, Menlo Pk, CA 94025 USA
关键词
Lattice defects; Crystalline battery cathode; Hard X-ray nanoprobe; Machine learning; Neural network; LAYERED-OXIDE CATHODES; ION BATTERIES; LICOO2; DYNAMICS; DESIGN;
D O I
10.1016/j.ensm.2021.12.019
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Lattice defects, e.g., dislocations and grain boundaries, critically impact the properties of crystalline battery cathode materials. A longstanding challenge is to probe the meso -scale heterogeneity and evolution of lattice defects with sensitivity to atomic-scale details. Herein, we tackle this issue with a unique combination of X-ray nanoprobe diffractive imaging and advanced machine learning techniques. The domains with different lattice defect configuration within a single-crystalline LiCoO(2 )cathode particle are faithfully revealed using our approach. We further visualize the rearrangement of grain boundaries and local crystallinity upon mild thermal annealing. These results pave a direct way to the understanding of crystalline battery materials' response under external stimuli with high fidelity, which provides valuable empirical guidance to defect-engineering strategies for improving the cathode materials against aggressive battery operation.
引用
收藏
页码:647 / 655
页数:9
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