Intergrating Hollow Multishelled Structure and High Entropy Engineering toward Enhanced Mechano‐Electrochemical Properties in Lithium Battery

Author:

Liu Xuefeng1ORCID,Yu Yingjie1,Li Kezhuo1,Li Yage1,Li Xiaohan1,Yuan Zhen1,Li Hang1,Zhang Haijun1,Gong Mingxing2,Xia Weiwei3,Deng Yaping4,Lei Wen15ORCID

Affiliation:

1. The State Key Laboratory of Refractories and Metallurgy Wuhan University of Science and Technology Wuhan 430081 China

2. Engineering Research Center of Nano‐Geomaterials of Ministry of Education Faculty of Materials Science and Chemistry China University of Geosciences Wuhan 430078 China

3. Shaanxi Materials Analysis and Research Center School of Materials Science and Engineering Northwestern Polytechnical University Xi'an 710000 China

4. Power Battery & System Research Center Dalian Institute of Chemical Physics Chinese Academy of Sciences Dalian 110623 China

5. Key Laboratory of Advanced Energy Materials Chemistry (Ministry of Education) Nankai University Tianjin 300071 China

Abstract

AbstractHollow multishelled structures (HoMSs) are attracting great interest in lithium‐ion batteries as the conversion anodes, owing to their superior buffering effect and mechanical stability. Given the synthetic challenges, especially elemental diffusion barrier in the multimetal combinations, this complex structure design has been realized in low‐ and medium‐entropy compounds so far. It means that poor reaction reversibility and low intrinsic conductivity remain largely unresolved. Here, a hollow multishelled (LiFeZnNiCoMn)3O4 high entropy oxide (HEO) is developed through integrating molecule and microstructure engineering. As expected, the HoMS design exhibits significant targeting functionality, yielding satisfactory structure and cycling stability. Meanwhile, the abundant oxygen defects and optimized electronic structure of HEO accelerate the lithiation kinetics, while the retention of the parent lattice matrix enables reversible lithium storage, which is validated by rigorous in situ tests and theoretical simulations. Benefiting from these combined properties, such hollow multishelled HEO anode can deliver a specific capacity of 967 mAh g−1 (89% capacity retention) after 500 cycles at 0.5 A g−1. The synergistic lattice and volume stability showcased in this work holds great promise in guiding the material innovations for the next‐generation energy storage devices.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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