电解质
材料科学
Nafion公司
离子电导率
流动电池
电化学
电导率
膜
铁氰化钾
化学工程
无机化学
物理化学
电极
化学
生物化学
工程类
作者
Thomas Y. George,Isabelle C. Thomas,Naphtal O. Haya,J. Deneen,Cliffton Wang,Michael J. Aziz
标识
DOI:10.1021/acsami.3c14173
摘要
Membrane transport properties are crucial for electrochemical devices, and these properties are influenced by the composition and concentration of the electrolyte in contact with the membrane. We apply this general membrane–electrolyte system approach to alkaline flow batteries, studying the conductivity and ferricyanide crossover of Nafion and E-620. We report undetectable crossover for as-received Nafion and E-620 after both sodium and potassium exchange but high ferricyanide permeability of 10 –7 to 10 –8 cm 2 s –1 for Nafion subjected to pretreatment prevalent in the flow battery literature. We show how the electrolyte mass fraction in hydrated membranes regulates the influence of ion concentration on membrane conductivity, identifying that increasing electrolyte concentration may not increase membrane conductivity even when it increases electrolyte conductivity. To illustrate this behavior, we introduce a new metric, the membrane penalty, as the ratio of the conductivity of the electrolyte to that of the membrane equilibrated with the electrolyte. We discuss the trade-off between flow battery volumetric capacity and areal power density that arises from these findings. Finally, we apply insights from this approach to provide recommendations for use of membranes in alkaline flow cells and electrochemical reactors in general.
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