Deep-Learning Aided Atomic-Scale Phase Segmentation toward Diagnosing Complex Oxide Cathodes for Lithium-Ion Batteries

被引:9
|
作者
Zhu, Dong [1 ,2 ,3 ]
Wang, Chunyang [1 ]
Zou, Peichao [1 ]
Zhang, Rui [1 ]
Wang, Shefang [4 ]
Song, Bohang [5 ]
Yang, Xiaoyu [2 ,3 ]
Low, Ke-Bin [4 ]
Xin, Huolin L. [1 ]
机构
[1] Univ Calif Irvine, Dept Phys & Astron, Irvine, CA 92697 USA
[2] Chinese Acad Sci, Comp Network Informat Ctr, Beijing 100190, Peoples R China
[3] Univ Chinese Acad Sci, Beijing 100049, Peoples R China
[4] BASF Corp, Iselin, NJ 08830 USA
[5] BASF Corp, Beachwood, OH 44122 USA
基金
美国国家科学基金会;
关键词
phase transformation; cathodes; lithium-ionbatteries; scanning transmission electron microscopy; phase segmentation; deep learning; GRAIN-BOUNDARIES; TRACKING; NETWORK;
D O I
10.1021/acs.nanolett.3c02441
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Phase transformation-a universal phenomenon in materials-plays a key role in determining their properties. Resolving complex phase domains in materials is critical to fostering a new fundamental understanding that facilitates new material development. So far, although conventional classification strategies such as order-parameter methods have been developed to distinguish remarkably disparate phases, highly accurate and efficient phase segmentation for material systems composed of multiphases remains unavailable. Here, by coupling hard-attention-enhanced U-Net network and geometry simulation with atomic-resolution transmission electron microscopy, we successfully developed a deep-learning tool enabling automated atom-by-atom phase segmentation of intertwined phase domains in technologically important cathode materials for lithium-ion batteries. The new strategy outperforms traditional methods and quantitatively elucidates the correlation between the multiple phases formed during battery operation. Our work demonstrates how deep learning can be employed to foster an in-depth understanding of phase transformation-related key issues in complex materials.
引用
收藏
页码:8272 / 8279
页数:8
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