多硫化物
膜
化学工程
储能
可再生能源
材料科学
共聚物
电解质
纳滤
化学
工程类
电极
复合材料
电气工程
物理
物理化学
功率(物理)
量子力学
生物化学
聚合物
作者
Michelle Lehmann,Tomonori Saito,M. Kamaludeen,Guang Yang
标识
DOI:10.1002/batt.202400401
摘要
Abstract Long‐duration energy storage (LDES) technologies are pivotal for the adoption of renewables like wind and solar. Non‐aqueous redox flow batteries (NARFBs) with a sodium‐polysulfide hybrid system feature high energy density independent of power density, yet face challenges with polysulfide shuttling. This study investigates a hydrocarbon‐based penta‐block copolymer membrane, Nexar, to mitigate crossover effects by balancing TFSI conversion and their crosslink density. The membranes are annealed to induce crosslinking for reducing electrolyte uptake and enhancing mechanical stability while demonstrating excellent ionic conductivity. The hydrocarbon‐based membranes address environmental concerns associated with perfluoroalkyl substances and improve the performance and durability of NARFBs. Our findings suggest that annealed Nexar membranes with tailored TFSI functionality offer a scalable, cost‐effective solution for enhancing the efficiency of high‐capacity energy storage systems, pivotal for grid integration of renewable sources.
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