灵活性(工程)
膜
纳米技术
微观结构
电解质
制作
氧化还原
材料科学
储能
流动电池
工艺工程
生化工程
工程物理
化学
工程类
复合材料
冶金
电极
物理
热力学
功率(物理)
数学
替代医学
生物化学
物理化学
病理
医学
统计
作者
Ping Xiong,Leyuan Zhang,Yuyue Chen,Sangshan Peng,Guihua Yu
标识
DOI:10.1002/anie.202105619
摘要
Abstract Redox flow batteries (RFBs) are among the most promising grid‐scale energy storage technologies. However, the development of RFBs with high round‐trip efficiency, high rate capability, and long cycle life for practical applications is highly restricted by the lack of appropriate ion‐conducting membranes. Promising RFB membranes should separate positive and negative species completely and conduct balancing ions smoothly. Specific systems must meet additional requirements, such as high chemical stability in corrosive electrolytes, good resistance to organic solvents in nonaqueous systems, and excellent mechanical strength and flexibility. These rigorous requirements put high demands on the membrane design, essentially the chemistry and microstructure associated with ion transport channels. In this Review, we summarize the design rationale of recently reported RFB membranes at the molecular level, with an emphasis on new chemistry, novel microstructures, and innovative fabrication strategies. Future challenges and potential research opportunities within this field are also discussed.
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