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Updated: Mar 27, 2026

Author Spotlight: Magnetometric Characterization of Intermediates in the Solid-State Electrochemistry of Redox-Active Metal-Organic Frameworks
Published on: June 9, 2023
A High-Stability Quinone-Based Homogeneous Catalyst Auxiliary Disulfide Bond Decomposition Enabling High-Efficiency
Xinyu Guo1, Mingjun Nan1,2, Wanyao Sun1
1Department of Materials Science and Engineering, Dalian Maritime University, Dalian 116026, China.
Abstract:
Sulfur-based flow batteries (SFBs) attract attention for large-scale energy storage due to the abundance and low cost of sulfur, as well as their simple design; however, they face challenges such as sluggish polysulfide redox kinetics, which cause high overpotentials and low efficiency. Herein, we introduce highly active quinone-based homogeneous molecular catalysts in the SFBs to alter the ionic arrangement around S(0) atoms, reducing the strong binding of disulfide bonds and thereby enhancing the electrochemical activity of polysulfides. The DHBQ catalyst could significantly lessen the overpotential to 280 mV (from 409 mV) at 20 mA cm-2 and increase the capacity to 10.8 Ah L-1(over three times that of the untreated one). A polysulfide-ferrocyanide flow battery was demonstrated for 200 cycles at 40 mA cm-2 with a 100% capacity retention rate. These improvements highlight the effectiveness of quinone-based homogeneous catalysts in overcoming the bottlenecks of SFBs, offering a promising strategy for their practical application in long-duration and large-scale energy storage systems.
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