Regulation of Interfacial Lattice Oxygen Activity by Full‐Surface Modification Engineering towards Long Cycling Stability for Co‐Free Li‐Rich Mn‐Based Cathode

Author:

Guo Weibin1,Zhang Yinggan1,Lin Liang1,Liu Yuanyuan1,Fan Mengjian1,Gao Guiyang1,Wang Shihao1,Sa Baisheng2,Lin Jie1,Luo Qing1,Qu Baihua3,Wang Laisen1,Shi Ji4,Xie Qingshui15,Peng Dong‐Liang1ORCID

Affiliation:

1. State Key Laboratory of Physical Chemistry of Solid Surface Fujian Key Laboratory of Surface and Interface Engineering for High Performance Materials College of Materials Xiamen University Xiamen 361005 P. R. China

2. Multiscale Computational Materials Facility College of Materials Science and Engineering Fuzhou University Fuzhou 350100 P. R. China

3. College of Materials Science and Engineering Chongqing University Chongqing 400044 P. R. China

4. School of Materials and Chemical Technology Tokyo Institute of Technology Tokyo 152–8552 Japan

5. Shenzhen Research Institute of Xiamen University Shenzhen 518000 P. R. China

Abstract

AbstractThe construction of a protective layer for stabilizing anion redox reaction is the key to obtaining long cycling stability for Li‐rich Mn‐based cathode materials. However, the protection of the exposed surface/interface of the primary particles inside the secondary particles is usually ignored and difficult, let alone the investigation of the impact of the surface engineering of the internal primary particles on the cycling stability. In this work, an efficient method to regulate cycling stability is proposed by simply adjusting the distribution state of the boron nickel complexes coating layer. Theoretical calculation and experimental results display that the full‐surface boron nickel complexes coating layer can not only passivate the activity of interface oxygen and improve its stability but also play the role of sharing voltage and protective layer to gradually activate the oxygen redox reaction during cycling. As a result, the elaborately designed cobalt‐free Li‐rich Mn‐based cathode displays the highest discharge‐specific capacity retentions of 91.1% after 400 cycles at 1 C and 94.3% even after 800 cycles at 5 C. In particular, the regulation strategy has well universality and is suitable for other high‐capacity Li‐rich cathode materials.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Xiamen University

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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