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Hydrangea-Like CuS with Irreversible Amorphization Transition for High-Performance Sodium-Ion Storage.
Yang, Zu-Guang; Wu, Zhen-Guo; Hua, Wei-Bo; Xiao, Yao; Wang, Gong-Ke; Liu, Yu-Xia; Wu, Chun-Jin; Li, Yong-Chun; Zhong, Ben-He; Xiang, Wei; Zhong, Yan-Jun; Guo, Xiao-Dong.
  • Yang ZG; School of Chemical Engineering Sichuan University Chengdu 610065 P. R. China.
  • Wu ZG; School of Chemical Engineering Sichuan University Chengdu 610065 P. R. China.
  • Hua WB; Institute for Applied Materials (IAM) Karlsruhe Institute of Technology (KIT) Hermann-von-Helmholtz-Platz 1 Eggenstein-Leopoldshafen 76344 Germany.
  • Xiao Y; School of Chemical Engineering Sichuan University Chengdu 610065 P. R. China.
  • Wang GK; School of Materials Science and Engineering Henan Normal University Xinxiang 453007 P. R. China.
  • Liu YX; The Key Laboratory of Life-Organic Analysis Key Laboratory of Pharmaceutical Intermediates and Analysis of Natural Medicine School of Chemistry and Chemical Engineering Qufu Normal University Qufu 273165 P. R. China.
  • Wu CJ; School of Chemical Engineering Sichuan University Chengdu 610065 P. R. China.
  • Li YC; School of Chemical Engineering Sichuan University Chengdu 610065 P. R. China.
  • Zhong BH; School of Chemical Engineering Sichuan University Chengdu 610065 P. R. China.
  • Xiang W; College of Materials and Chemistry &Chemical Engineering Chengdu University of Technology Chengdu 610059 P. R. China.
  • Zhong YJ; School of Chemical Engineering Sichuan University Chengdu 610065 P. R. China.
  • Guo XD; School of Chemical Engineering Sichuan University Chengdu 610065 P. R. China.
Adv Sci (Weinh) ; 7(11): 1903279, 2020 Jun.
Article en En | MEDLINE | ID: mdl-32537402
Metal sulfides have been intensively investigated for efficient sodium-ion storage due to their high capacity. However, the mechanisms behind the reaction pathways and phase transformation are still unclear. Moreover, the effects of designed nanostructure on the electrochemical behaviors are rarely reported. Herein, a hydrangea-like CuS microsphere is prepared via a facile synthetic method and displays significantly enhanced rate and cycle performance. Unlike the traditional intercalation and conversion reactions, an irreversible amorphization process is evidenced and elucidated with the help of in situ high-resolution synchrotron radiation diffraction analyses, and transmission electron microscopy. The oriented (006) crystal plane growth of the primary CuS nanosheets provide more channels and adsorption sites for Na ions intercalation and the resultant low overpotential is beneficial for the amorphous Cu-S cluster, which is consistent with the density functional theory calculation. This study can offer new insights into the correlation between the atomic-scale phase transformation and macro-scale nanostructure design and open a new principle for the electrode materials' design.
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