氧化还原
螯合作用
材料科学
水溶液中的金属离子
纳米技术
电化学
电化学储能
储能
化学工程
化学
金属
计算机科学
工艺工程
生化工程
无机化学
电极
冶金
工程类
热力学
功率(物理)
物理化学
物理
超级电容器
作者
Wendong Yang,Xue Long,Hua Jiang,Jinhua Guo,Jun Zhou,Jiangjiang Duan
标识
DOI:10.1002/cssc.202500697
摘要
Aqueous iron‐based redox flow batteries (IRFBs) are promising candidates for cost‐effective, large‐scale energy storage. However, their development is hindered by persistent challenges, including hydrogen evolution reaction (HER), dendrite formation, sluggish kinetics, and active species crossover. Chelation engineering offers a transformative approach for overcoming these obstacles. By modifying the coordination environment of metal ions, chelation directly influences the electrochemical properties of metal ions and the thermodynamics of redox reactions, leading to significant improvements in battery efficiency, cycle stability, and system scalability compared to conventional IRFBs. This work highlights the potential of chelation engineering in optimizing IRFB performance and outlines key research priorities to advance the development of chelated IRFBs for grid‐scale energy storage applications.
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