Redox of Dual-Radical Intermediates in a Methylene-Linked Covalent Triazine Framework for High-Performance Lithium-Ion Batteries

Research output: Journal Publications and Reviews (RGC: 21, 22, 62)21_Publication in refereed journalpeer-review

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Author(s)

  • Zhiqiang Wang
  • Lujie Cao
  • Long Kong
  • Zhenyu Wang
  • Muqing Li
  • Wen Luo
  • Jingjing Chen
  • Sisi Wu
  • Guiyu Liu
  • Huimin Yuan
  • Yunfei Bai
  • Zhouguang Lu

Related Research Unit(s)

Detail(s)

Original languageEnglish
Pages (from-to)514−521
Number of pages8
Journal / PublicationACS Applied Materials and Interfaces
Volume13
Issue number1
Online published16 Dec 2020
Publication statusPublished - 13 Jan 2021

Abstract

Covalent triazine frameworks (CTFs) are promising electrodes for rechargeable batteries due to their adjustable structures, rich redox sites, and tunable porosity. However, the CTFs usually exhibit inferior electrochemical stability because of the inactivation of the unstable radical intermediates. Here, a methylene-linked CTF has been synthesized and evaluated as a cathode for rechargeable lithium-ion batteries. Electron paramagnetic resonance (EPR) and in situ Raman characterizations demonstrated that the redox activity and reversibility of α-C and triazine radical intermediates are essentially important for the charging/discharging process, which have been efficiently stabilized by the synergetic πconjugation and hindrance effect caused by the adjacent rigid triazine rings and benzene rings in the unique CTF-p framework. Additionally, the methylene groups provided extra redox-active sites. As a result, high capacity and cycling stability were achieved. This work inspires the rational modulation of the radical intermediates to enhance the electrochemical performance of organic electrode materials for the next-generation energy storage devices.

Research Area(s)

  • covalent triazine frameworks (CTFs), lithium-ion storage, organic α-C radical, p-xylylene dicyanide, radical intermediates

Citation Format(s)

Redox of Dual-Radical Intermediates in a Methylene-Linked Covalent Triazine Framework for High-Performance Lithium-Ion Batteries. / Wang, Zhiqiang; Gu, Shuai; Cao, Lujie et al.

In: ACS Applied Materials and Interfaces, Vol. 13, No. 1, 13.01.2021, p. 514−521.

Research output: Journal Publications and Reviews (RGC: 21, 22, 62)21_Publication in refereed journalpeer-review