An In Situ Near‐Surface Reconstruction Strategy Endowing Lithium‐Rich Oxides with Li/O Dual Vacancies and Spinel‐Carbon Dual Coating Layers Toward High Energy Density Cathode

Author:

Ouyang Yuguo12,Zhang Ying2,Wang Gongrui2,Wei Xiaofei1,Zhang Anping2,Sun Junwei2,Wei Shiqiang3,Song Li3,Dai Fangna1,Wu Zhong‐Shuai24ORCID

Affiliation:

1. School of Materials Science and Engineering China University of Petroleum (East China) Qingdao 266580 P. R. China

2. State Key Laboratory of Catalysis, Dalian Institute of Chemical Physics Chinese Academy of Science 457 Zhongshan Road Dalian 116023 P. R. China

3. National Synchrotron Radiation Laboratory, CAS Center for Excellence in Nanoscience University of Science and Technology of China Hefei Anhui 230029 P. R. China

4. Dalian National Laboratory for Clean Energy Chinese Academy of Science 457 Zhongshan Road Dalian 116023 P. R. China

Abstract

AbstractLi‐rich cathode materials (LRMs) are regarded as the key cathode candidates for next‐generation lithium‐ion batteries(LIBs) because of their high specific capacity and environmental friendliness. However, LRMs encounter poor cyclability and low initial coulombic efficiency (ICE) hindering their practical application. Herein, a general near‐surface in situ reconstruction strategy is proposed of constructing the Li/O dual vacancies and spinel‐carbon dual coating layers on the surface of LRMs concurrently to improve Li+ storage performance. The as‐prepared LRMs exhibit a greatly strengthened specific capacity of 283 mAh g−1 with an enhanced ICE of 94% and long‐term cyclability of 91% retention after 200 cycles compared with the pristine LRMs (212 mAh g−1 with an ICE of 65%, 76% retention after 200 cycles). Furthermore, it is theoretically revealed that O vacancies (Ov) prefer to occur at the interface of the C2/m and Rm phases to mitigate lattice stress, rather the O sites in individual C2/m or Rm phase with more coordinated atoms. Besides, Li ions exhibit lower migration energy from C2/m phase to Rm phase with the Ov located at the lattice interface. Therefore, this strategy opens a new avenue in the design perspective of the LRMs’ near‐surface for high‐energy‐density LIBs.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Natural Science Foundation of Shandong Province

Dalian National Laboratory for Clean Energy

Publisher

Wiley

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