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个人信息Personal Information
职称:特聘教授(人才)
博士生导师
学科:材料学
学位:博士
所在单位:材料科学与工程学院
联系方式:邮箱:wangxiang25@ustb.edu.cn
Progresses and perspectives of all‐iron aqueous redox flow batteries
点击次数:
影响因子:19.8
DOI码:10.1002/adfm.202302077
发表刊物:Advanced Functional Materials
摘要:Redox flow batteries (RFBs) are a promising option for long-duration energystorage (LDES) due to their stability, scalability, and potential reversibility.However, solid-state and non-aqueous flow batteries have low safety and lowconductivity, while aqueous systems using vanadium and zinc are expensiveand have low power and energy densities, limiting their industrial application.An approach to lower capital cost and improve scalability is to utilize cheapEarth-abundant metals such as iron (Fe). Nevertheless, all-iron RFBs havemany complications, involving voltage loss from ohmic resistance, sidereactions such as hydrogen evolution, oxidation, and most significantlyelectrode plating, and dendrite growth. To address these issues, researchershave begun to examine the effects of various alterations to all-iron RFBs, suchas adding organic ligands to form Fe complexes and using a slurry electrodeinstead of common materials such as graphite or platinum rods. Overall,progress in improving aqueous all-iron RFBs is at its infant stage, and newstrategies must be introduced, such as the utilization of nanoparticles, whichcan limit dendrite growth while increasing storage capacity. This reviewprovides an in-depth overview of current research and offers perspectives onhow to design the next generation of all-iron aqueous RFBs
第一作者:Shawn Belongia
论文类型:期刊论文
通讯作者:Xiang Wang, Xin Zhang
学科门类:工学
文献类型:J
卷号:34
期号:5
页面范围:2302077
是否译文:否
发表时间:2023-06-05
收录刊物:SCI
发布期刊链接:https://advanced.onlinelibrary.wiley.com/doi/full/10.1002/adfm.202302077

