Additive engineering for robust interphases to stabilize high-Ni layered structures at ultra-high voltage of 4.8 V

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

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Author(s)

  • Sha Tan
  • Zulipiya Shadike
  • Jizhou Li
  • Xuelong Wang
  • Yang Yang
  • And 13 others
  • Ruoqian Lin
  • Arthur Cresce
  • Jiangtao Hu
  • Adrian Hunt
  • Iradwikanari Waluyo
  • Lu Ma
  • Federico Monaco
  • Peter Cloetens
  • Jie Xiao
  • Yijin Liu
  • Xiao-Qing Yang
  • Kang Xu
  • Enyuan Hu

Detail(s)

Original languageEnglish
Pages (from-to)484-494
Journal / PublicationNature Energy
Volume7
Issue number6
Online published9 May 2022
Publication statusPublished - Jun 2022
Externally publishedYes

Abstract

Nickel-rich layered cathode materials promise high energy density for next-generation batteries when coupled with lithium metal anodes. However, the practical capacities accessible are far less than the theoretical values due to their structural instability during cycling, especially when charged at high voltages. Here we demonstrate that stable cycling with an ultra-high cut-off voltage of 4.8 V can be realized by using an appropriate amount of lithium difluorophosphate in a common commercial electrolyte. The Li||LiNi0.76Mn0.14Co0.10O2 cell retains 97% of the initial capacity (235 mAh g–1) after 200 cycles. The cycling stability is ascribed to the robust interphase on the cathode. It is formed by lithium difluorophosphate decomposition, which is facilitated by the catalytic effect of transition metals. The decomposition products (Li3PO4 and LiF) form a protective interphase. This suppresses transition metal dissolution and cathode surface reconstruction. It also facilitates uniform Li distribution within the cathode, effectively mitigating the strain and crack formation.

Citation Format(s)

Additive engineering for robust interphases to stabilize high-Ni layered structures at ultra-high voltage of 4.8 V. / Tan, Sha; Shadike, Zulipiya; Li, Jizhou et al.
In: Nature Energy, Vol. 7, No. 6, 06.2022, p. 484-494.

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review