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Updated: Jan 14, 2026

A Protocol for Electrochemical Evaluations and State of Charge Diagnostics of a Symmetric Organic Redox Flow Battery
Published on: February 13, 2017
Dual-Pathway Redox-Targeting Catalysis Promoting Electrochemical Kinetics for Bromine-Based Flow Batteries
Qianyun Wang1,2, Qiming Zhang1,2, Jianwei Wang1,2
1School of Materials Science and Engineering, Northeastern University, Shenyang 110819, Liaoning, China.
Abstract:
Bromine-based flow battery (BFB) boasts numerous merits of high energy density, intrinsic safety, and low cost, making it highly promising in the field of large-scale energy storage. However, the inferior activity and significant permeation of the bromine cathode severely hinder its commercialization. Herein, a Prussian blue analogue Co2Fe(CN)6 (CoHCF) coated with a nitrogenous carbon composite (CoHCF@NC) is designed to catalyze the redox-targeting reactions at the bromine cathode. The cationic pairs of CoIII/CoII and the anionic pairs of FeIII(CN)6/FeII(CN)6 in CoHCF are both coupled with Br2/Br- in the redox potential range, which enables a two-pathway redox-targeting catalysis for the bromine cathode, thereby remarkably promoting the electrochemical kinetics. Besides, the ZIF-derived nitrogenous carbon (NC) framework guarantees smooth electron transmission for the uniformly embedded CoHCF catalyst. Consequently, the zinc-bromine flow battery assembled with CoHCF@NC catalyst delivers an ultrahigh energy efficiency of 86.1% and 65.3% at 80 and 200 mA cm-2, respectively, and maintains a stable operation for 300 cycles at 80 mA cm-2. This work proposes a design strategy to enhance the redox-targeting catalysis, effectively improving the practical performance of BFB.
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