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Large-Scale Integration of the Ion-Reinforced Phytic Acid Layer Stabilizing Magnesium Metal Anode.
Wen, Tiantian; Tan, Shuangshuang; Li, Rong; Huang, Xueting; Xiao, Hui; Teng, Xuxi; Jia, Hongxing; Xiong, Fangyu; Huang, Guangsheng; Qu, Baihua; Song, Jiangfeng; Wang, Jingfeng; Tang, Aitao; Pan, Fusheng.
  • Wen T; College of Materials Science and Engineering, National Engineering Research Center for Magnesium Alloys, National Innovation Center for Industry-Education Integration of Energy Storage Technology, Chongqing University, Chongqing 400044, China.
  • Tan S; Chongqing Institute of New Energy Storage Materials and Equipment, Chongqing 401135, China.
  • Li R; College of Materials Science and Engineering, National Engineering Research Center for Magnesium Alloys, National Innovation Center for Industry-Education Integration of Energy Storage Technology, Chongqing University, Chongqing 400044, China.
  • Huang X; Chongqing Institute of New Energy Storage Materials and Equipment, Chongqing 401135, China.
  • Xiao H; College of Materials Science and Engineering, National Engineering Research Center for Magnesium Alloys, National Innovation Center for Industry-Education Integration of Energy Storage Technology, Chongqing University, Chongqing 400044, China.
  • Teng X; Chongqing Institute of New Energy Storage Materials and Equipment, Chongqing 401135, China.
  • Jia H; College of Materials Science and Engineering, National Engineering Research Center for Magnesium Alloys, National Innovation Center for Industry-Education Integration of Energy Storage Technology, Chongqing University, Chongqing 400044, China.
  • Xiong F; Chongqing Institute of New Energy Storage Materials and Equipment, Chongqing 401135, China.
  • Huang G; College of Materials Science and Engineering, National Engineering Research Center for Magnesium Alloys, National Innovation Center for Industry-Education Integration of Energy Storage Technology, Chongqing University, Chongqing 400044, China.
  • Qu B; Chongqing Institute of New Energy Storage Materials and Equipment, Chongqing 401135, China.
  • Song J; College of Materials Science and Engineering, National Engineering Research Center for Magnesium Alloys, National Innovation Center for Industry-Education Integration of Energy Storage Technology, Chongqing University, Chongqing 400044, China.
  • Wang J; Chongqing Institute of New Energy Storage Materials and Equipment, Chongqing 401135, China.
  • Tang A; College of Materials Science and Engineering, National Engineering Research Center for Magnesium Alloys, National Innovation Center for Industry-Education Integration of Energy Storage Technology, Chongqing University, Chongqing 400044, China.
  • Pan F; Chongqing Institute of New Energy Storage Materials and Equipment, Chongqing 401135, China.
ACS Nano ; 18(18): 11740-11752, 2024 May 07.
Article en En | MEDLINE | ID: mdl-38648626
ABSTRACT
Rechargeable magnesium batteries (RMBs) have garnered significant attention for their potential in large-scale energy storage applications. However, the commercial development of RMBs has been severely hampered by the rapid failure of large-sized Mg metal anodes, especially under fast and deep cycling conditions. Herein, a concept proof involving a large-scale ion-reinforced phytic acid (PA) layer (100 cm × 7.5 cm) with an excellent water-oxygen tolerance, high Mg2+ conductivity, and favorable electrochemical stability is proposed to enable rapid and uniform plating/stripping of Mg metal anode. Guided by even distributions of Mg2+ flux and electric field, the as-prepared large-sized PA-Al@Mg electrode (5.8 cm × 4.5 cm) exhibits no perforation and uniform Mg plating/stripping after cycling. Consequently, an ultralong lifespan (2400 h at 3 mA cm-2 with 1 mAh cm-2) and high current tolerance (300 h at 9 mA cm-2 with 1 mAh cm-2) of the symmetric cell using the PA-Al@Mg anode could be achieved. Notably, the PA-Al@Mg//Mo6S8 full cell demonstrates exceptional stability, operating for 8000 cycles at 5 C with a capacity retention of 99.8%, surpassing that of bare Mg (3000 cycles, 74.7%). Moreover, a large-sized PA-Al@Mg anode successfully contributes to the stable pouch cell (200 and 750 cycles at 0.1 and 1 C), further confirming its significant potential for practical utilization. This work provides valuable theoretical insights and technological support for the practical implementation of RMBs.
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Texto completo: 1 Banco de datos: MEDLINE Idioma: En Año: 2024 Tipo del documento: Article

Texto completo: 1 Banco de datos: MEDLINE Idioma: En Año: 2024 Tipo del documento: Article