In Situ Cyclized Polyacrylonitrile Coating: Key to Stabilizing Porous High‐Entropy Oxide Anodes for High‐Performance Lithium‐Ion Batteries

Author:

Hong Chang12,Tao Runming34,Tan Susheng5,Pressley Lucas A.3,Bridges Craig A.3,Li Hui‐Ying1,Liu Xiaolang1,Li Haifeng1,Li Jianlin4,Yuan Huiyu2,Sun Xiao‐Guang3,Liang Jiyuan1ORCID

Affiliation:

1. Key Laboratory of Optoelectronic Chemical Materials and Devices of Ministry of Education School of Optoelectronic Materials & Technology Jianghan University Wuhan 430056 China

2. Henan Key Laboratory of High Temperature Functional Ceramics School of Materials Science and Engineering Zhengzhou University Zhengzhou 450052 China

3. Chemical Sciences Division Oak Ridge National Laboratory Oak Ridge TN 37831 USA

4. Applied Materials Division Argonne National Laboratory Lemont IL 60439 USA

5. Department of Electrical and Computer Engineering Gertrude E. and John M. Petersen Institute of Nano Science and Engineering the University of Pittsburgh Pittsburgh PA 15261 USA

Abstract

AbstractHigh‐entropy oxides (HEOs) composed of multiple metal elements have attracted great attention as anode materials for lithium‐ion batteries (LIBs) due to the synergistic effects of various metal species. However, the practical applications of HEOs are still plagued by poor conductivity, unstable solid electrolyte interphase (SEI) and poor cycling stability. Herein, nanosized (FeCoNiCrMn)3O4 HEO (NHEO) is prepared successfully by the NaCl‐assisted mechanical ball‐milling strategy. Novelly, polyacrylonitrile (PAN) is used as the binder and then in situ thermochemically cyclized to construct a cyclized PAN (cPAN) outer layer onto NHEO (NHEO‐cPAN). The in situ formed cPAN coating not only improves the electrical conductivity, but also reinforces the structural and interfacial stability, and thereby, the resulted NHEO‐cPAN electrode exhibits significantly enhanced rate and cyclic performance. Specifically, NHEO‐PAN500 electrode delivers a high reversible capacity of 560 mAh g−1 at 5 A g−1 and a high‐capacity retention of 83% over 800 cycles at 3 A g−1. Furthermore, the structural evolution and electrochemical behavior of NHEO‐PAN electrode during discharge/charge is systematically investigated by operando X‐ray diffraction, in situ impedance spectroscopy and ex situ high‐resolution transmission electron microscopy. Therefore, this work provides new insights into the engineering of electrode and interphase for high‐performance HEO electrode materials, potentially enlightening the practical applications of HEO‐based LIBs.

Funder

National Natural Science Foundation of China

Jianghan University

U.S. Department of Energy

Basic Energy Sciences

Materials Sciences and Engineering Division

Defense Sciences Office

Publisher

Wiley

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