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全固态锂离子电池充放电过程中单晶LiCoO颗粒的微观光电子分析

Microscopic photoelectron analysis of single crystalline LiCoO particles during the charge-discharge in an all solid-state lithium ion battery.

作者信息

Akada Keishi, Sudayama Takaaki, Asakura Daisuke, Kitaura Hirokazu, Nagamura Naoka, Horiba Koji, Oshima Masaharu, Hosono Eiji, Harada Yoshihisa

机构信息

Institute for Solid State Physics, The University of Tokyo, Kashiwa, Chiba, 277-8581, Japan.

Research Institute for Energy Conservation, National Institute of Advanced Industrial Science and Technology, Tsukuba, Ibaraki, 305-8568, Japan.

出版信息

Sci Rep. 2019 Aug 28;9(1):12452. doi: 10.1038/s41598-019-48842-6.

Abstract

We report synchrotron-based operando soft X-ray microscopic photoelectron spectroscopy under charge-discharge control of single crystalline LiCoO (LCO) particles as an active electrode material for an all solid-state lithium-ion battery (LIB). Photoelectron mapping and the photoelectron spectrum of a selected microscopic region are obtained by a customized operando cell for LIBs. During the charge process, a more effective Li extraction from a side facet of the single crystalline LCO particle than from the central part is observed, which ensures the reliability of the system as an operando microscopic photoelectron analyzer that can track changes in the electronic structure of a selected part of the active particle. Based on these assessments, the no drastic change in the Co 2p XPS spectra during charge-discharge of LCO supports that the charge-polarization may occur at the oxygen side by strong hybridization between Co 3d and O 2p orbitals. The success of tracking the electronic-structure change at each facet of a single crystalline electrode material during charge-discharge is a major step toward the fabrication of innovative active electrode materials for LIBs.

摘要

我们报道了在全固态锂离子电池(LIB)的活性电极材料单晶LiCoO(LCO)颗粒的充放电控制下,基于同步加速器的原位软X射线显微镜光电子能谱。通过定制的用于LIB的原位电池,获得了选定微观区域的光电子映射和光电子能谱。在充电过程中,观察到从单晶LCO颗粒的侧面比从中心部分更有效地提取Li,这确保了该系统作为一种原位微观光电子分析仪的可靠性,该分析仪可以跟踪活性颗粒选定部分的电子结构变化。基于这些评估,LCO充放电过程中Co 2p XPS光谱没有剧烈变化,这支持了电荷极化可能通过Co 3d和O 2p轨道之间的强杂化在氧侧发生。在充放电过程中跟踪单晶电极材料每个面的电子结构变化的成功,是朝着制造用于LIB的创新活性电极材料迈出的重要一步。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0f84/6713709/1fe865ee9a54/41598_2019_48842_Fig1_HTML.jpg

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