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Enhanced high-temperature performance of Li-rich layered oxide via surface heterophase coating

机译:通过表面杂合酶涂层增强富富含量的层状氧化物的高温性能

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摘要

Li-rich layered oxides have become one of the most concerned cathode materials for high-energy lithiumion batteries, but they still suffer from poor cycling stability and detrimental voltage decay, especially at elevated temperature. Herein, we proposed a surface heterophase coating engineering based on amorphous/crystalline Li3 PO4 to address these issues for Li-rich layered oxides via a facile wet chemical method. The heterophase coating layer combines the advantages of physical barrier effect achieved by amorphous Li3 PO4 with facilitated Li+diffusion stemmed from crystalline Li3 PO4. Consequently, the modified Li(1.2) Ni(0.2) Mn(0.6) O2 delivers higher initial coulombic efficiency of 92% with enhanced cycling stability at 55 °C(192.9 mAh/g after 100 cycles at 1 C). More importantly, the intrinsic voltage decay has been inhibited as well, i.e. the average potential drop per cycle decreases from 5.96 mV to 2.99 mV. This surface heterophase coating engineering provides an effective strategy to enhance the high-temperature electrochemical performances of Li-rich layered oxides and guides the direction of surface modification strategies for cathode materials in the future.

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  • 来源
    《天然气化学(英文版)》 |2020年第12期|39-47|共9页
  • 作者单位

    Beijing Key Laboratory of Environmental Science and Engineering School of Materials Science and Engineering Beijing Institute of Technology Beijing 100081 China;

    Beijing Institute of Technology Chongqing Innovation Center Chongqing 401120 China;

    Beijing Key Laboratory of Environmental Science and Engineering School of Materials Science and Engineering Beijing Institute of Technology Beijing 100081 China;

    Beijing Institute of Technology Chongqing Innovation Center Chongqing 401120 China;

    Beijing Key Laboratory of Environmental Science and Engineering School of Materials Science and Engineering Beijing Institute of Technology Beijing 100081 China;

    Beijing Institute of Technology Chongqing Innovation Center Chongqing 401120 China;

    Beijing Key Laboratory of Environmental Science and Engineering School of Materials Science and Engineering Beijing Institute of Technology Beijing 100081 China;

    Beijing Institute of Technology Chongqing Innovation Center Chongqing 401120 China;

    Beijing Key Laboratory of Environmental Science and Engineering School of Materials Science and Engineering Beijing Institute of Technology Beijing 100081 China;

    Beijing Institute of Technology Chongqing Innovation Center Chongqing 401120 China;

    Beijing Key Laboratory of Environmental Science and Engineering School of Materials Science and Engineering Beijing Institute of Technology Beijing 100081 China;

    Beijing Institute of Technology Chongqing Innovation Center Chongqing 401120 China;

    Beijing Key Laboratory of Environmental Science and Engineering School of Materials Science and Engineering Beijing Institute of Technology Beijing 100081 China;

    Beijing Key Laboratory of Environmental Science and Engineering School of Materials Science and Engineering Beijing Institute of Technology Beijing 100081 China;

    Beijing Institute of Technology Chongqing Innovation Center Chongqing 401120 China;

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