A response time-based method to operando decouple the polarizations in redox flow batteries

Zhenyu Wang, Yiju Li, Jiayou Ren, Jing Sun, Tianshuai Wang, Bin Liu, Xinzhuang Fan, Tianshou Zhao

Research output: Contribution to journalArticlepeer-review

6 Scopus citations

Abstract

The polarization of redox flow batteries (RFBs) consists of activation polarization, ohmic polarization, and concentration polarization. However, the three types of polarizations are coupled in practice, making it difficult to quantify the respective attributions to the total voltage loss and to compare the reported performance of RFBs under different working conditions. Here, we propose a method to operando decouple the polarizations of RFBs based on the different response times of the three kinds of polarizations. The decoupled polarizations in RFBs under different working conditions are presented with specific voltage losses, which clarifies the limit parameters of battery performance and makes the reports of RFBs comparable even with similar battery performances. This work opens up a method to quantitatively analyze activation polarization and concentration polarization separately in RFBs, which provides significant guidance for improving battery performance effectively.

Original languageEnglish
Article number101395
JournalCell Reports Physical Science
Volume4
Issue number5
DOIs
StatePublished - 17 May 2023

Keywords

  • activation polarization
  • concentration polarization
  • operando decouple polarizations
  • quantitatively analyze
  • redox flow batteries
  • response time-based method
  • working conditions

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