氧化还原
化学
乙二胺四乙酸
溶解
溶解度
化学工程
配体(生物化学)
水溶液
流动电池
储能
无机化学
扩散
醋酸
纳米技术
组合化学
溶剂
分离器(采油)
降级(电信)
电极
电镀(地质)
体积流量
作者
Biao Lu,Kaifeng Yu,Huihui Cao,Jianing Zhang,Jinpeng Cao,Changzhi Tu,Yaqi Zhao,Bo Liu,Feifei Zhang
标识
DOI:10.1021/acssuschemeng.6c00560
摘要
Redox flow batteries (RFBs) are emerging as a promising technology for large-scale energy storage applications due to their low cost, high safety, and environmentally benign nature. Among them, aqueous tin-based redox flow batteries (TRFBs) have attracted increasing attention for their dendrite-free plating and suppression of the hydrogen evolution reaction. However, their development has been hindered by the low solubility of Sn(II) electrolytes, sluggish Sn(II)/Sn reaction kinetics, and the irreversible formation of inactive “dead Sn.” Herein, we present a dual strategy combining ligand engineering and redox-mediated reactions to overcome these limitations. By introducing ethylenediaminetetraacetic acid (EDTA), a stable EDTA–Sn(OH)3– complex is formed, which enhances the Sn(II) solubility up to 0.3 M and modulates the Sn deposition morphology, thereby improving diffusion behavior and redox kinetics. Furthermore, 7,8-dihydroxyphenazine-2-sulfonic acid (DHPS) is employed as a redox mediator, which spontaneously reacts with inactive Sn deposits, effectively dissolving “dead Sn” and significantly improving capacity retention. When paired with potassium ferrocyanide, the EDTA-Sn-DHPS/Fe RFB exhibits excellent rate capabilities, prolonged cycling stability (300 cycles at 80 mA cm–2 and 20 mAh cm–2), a high energy efficiency of 84.5%, and a peak power density of 228.6 mW cm–2. This strategy offers a promising route for the development of high-performance TRFBs.
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