Skyllas-Kazacos Maria, Cao Liuyue, Kazacos Michael, Kausar Nadeem, Mousa Asem
School of Chemical Engineering, University of NSW, UNSW Australia, Sydney, 2052, Australia.
ChemSusChem. 2016 Jul 7;9(13):1521-43. doi: 10.1002/cssc.201600102. Epub 2016 Jun 13.
The electrolyte is one of the most important components of the vanadium redox flow battery and its properties will affect cell performance and behavior in addition to the overall battery cost. Vanadium exists in several oxidation states with significantly different half-cell potentials that can produce practical cell voltages. It is thus possible to use the same element in both half-cells and thereby eliminate problems of cross-contamination inherent in all other flow battery chemistries. Electrolyte properties vary with supporting electrolyte composition, state-of-charge, and temperature and this will impact on the characteristics, behavior, and performance of the vanadium battery in practical applications. This Review provides a broad overview of the physical properties and characteristics of the vanadium battery electrolyte under different conditions, together with a description of some of the processing methods that have been developed to produce vanadium electrolytes for vanadium redox flow battery applications.
电解质是钒氧化还原液流电池最重要的组成部分之一,其性质除了会影响电池总成本外,还会影响电池性能和行为。钒存在多种氧化态,其半电池电位差异显著,可产生实际的电池电压。因此,在两个半电池中使用相同的元素成为可能,从而消除了所有其他液流电池化学体系中固有的交叉污染问题。电解质性质会随支持电解质组成、充电状态和温度而变化,这将影响钒电池在实际应用中的特性、行为和性能。本综述广泛概述了不同条件下钒电池电解质的物理性质和特征,并描述了一些已开发出的用于生产钒氧化还原液流电池应用的钒电解质的加工方法。