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Interface Engineering via Manipulating Solvation Chemistry for Liquid Lithium-Ion Batteries Operated ≥ 100 °C.
Xiao, Peitao; Gao, Hongjing; Chen, Yufang; Teng, Tao; Yun, Xiaoru; Lu, Di; Zhou, Guangmin; Zhao, Yun; Li, Baohua; Zhou, Xing; Zheng, Chunman.
  • Xiao P; National University of Defense Technology, Material Science and Engineering, Deya Road 109, Changsha, CHINA.
  • Gao H; National University of Defense Technology, College of Aerospace Science and Engineering, Deya Road, Changsha, CHINA.
  • Chen Y; National University of Defense Technology, College of Aerospace Science and Engineering, Deya Road, CHangsha, CHINA.
  • Teng T; National University of Defense Technology, College of Aerospace Science and Engineering, Deya Road, CHangsha, CHINA.
  • Yun X; National University of Defense Technology, College of Aerospace Science and Engineering, Deya Road, 410073, Changsha, CHINA.
  • Lu D; National University of Defense Technology, College of Aerospace Science and Engineering, Deya Road, 410073, Changsha, CHINA.
  • Zhou G; Tsinghua University, Tsinghua Shenzhen International Graduate School, Nanshan, Shenzhen, CHINA.
  • Zhao Y; Tsinghua University, Tsinghua Shenzhen International Graduate School, CHINA.
  • Li B; Tsinghua University, Tsinghua Shenzhen International Graduate School, CHINA.
  • Zhou X; National University of Defense Technology, College of System Engineering, 410073, Changsha, CHINA.
  • Zheng C; National University of Defense Technology, College of Aerospace Science and Engineering, Deya Road, Changsha, CHINA.
Angew Chem Int Ed Engl ; : e202410982, 2024 Jun 27.
Article en En | MEDLINE | ID: mdl-38935427
ABSTRACT
High-performance and temperature-resistant lithium-ion batteries (LIBs), which are able to operate at elevated temperatures (i.e., >60 °C) are highly demanded in various fields, especially in military or aerospace exploration. However, their applications were  impeded by the poor electrochemical performance and unsatisfying safety issues, which was induced by the severe side reactions between electrolytes and electrodes at high temperatures. Herein, with the synergetic effects of solvation chemistry and functional additive in the elaborately designed weakly solvating electrolyte, a unique robust organic/inorganic hetero-interphase, composed of gradient F, B-rich inorganic components and homogeneously distributed Si-rich organic components, was successfully constructed on both cathodes and anodes, which would effectively inhibit the constant decomposition of electrolytes and dissolution of transition metal ions. As a result, both cathodes and anodes, without compromising their low-temperature performance, operate at temperatures ≥100 ℃, with excellent capacity retentions of 96.1 % after 500 cycles and 93.5% after ≥200 cycles, respectively, at 80 ℃. Ah-level LiCoO2||graphite full cells with a cut-off voltage of 4.3 V also exhibited superior temperature-resistance with a capacity retention of 89.9% at temperature as high as 120 ℃. Moreover, the fully charged pouch cells exhibited highly enhanced safety, demonstrating their potentials in practical applications at ultrahigh temperatures.
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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