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Radical Compatibility with Nonaqueous Electrolytes and Its Impact on an All-Organic Redox Flow Battery

  • Xiaoliang Wei
  • , Wu Xu
  • , Jinhua Huang
  • , Lu Zhang
  • , Eric Walter
  • , Chad Lawrence
  • , M. Vijayakumar
  • , Wesley A. Henderson
  • , Tianbiao Liu
  • , Lelia Cosimbescu
  • , Bin Li
  • , Vincent Sprenkle
  • , Wei Wang

Research output: Contribution to journalArticlepeer-review

321 Scopus citations

Abstract

Nonaqueous redox flow batteries hold the promise of achieving higher energy density because of the broader voltage window than aqueous systems, but their current performance is limited by low redox material concentration, cell efficiency, cycling stability, and current density. We report a new nonaqueous all-organic flow battery based on high concentrations of redox materials, which shows significant, comprehensive improvement in flow battery performance. A mechanistic electron spin resonance study reveals that the choice of supporting electrolytes greatly affects the chemical stability of the charged radical species especially the negative side radical anion, which dominates the cycling stability of these flow cells. This finding not only increases our fundamental understanding of performance degradation in flow batteries using radical-based redox species, but also offers insights toward rational electrolyte optimization for improving the cycling stability of these flow batteries.

Original languageEnglish
Pages (from-to)8684-8687
Number of pages4
JournalAngewandte Chemie - International Edition
Volume54
Issue number30
DOIs
StatePublished - Jul 20 2015

Keywords

  • ESR spectroscopy
  • electrochemistry
  • electrolyte optimization
  • nonaqueous redox flow batteries
  • radicals

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