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Ex-Situ Evaluation of Commercial Polymer Membranes for Vanadium Redox Flow Batteries (VRFBs)

Overview
Publisher MDPI
Date 2021 Apr 3
PMID 33802914
Citations 3
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Abstract

Polymer membranes play a vital role in vanadium redox flow batteries (VRFBs), acting as a separator between the two compartments, an electronic insulator for maintaining electrical neutrality of the cell, and an ionic conductor for allowing the transport of ionic charge carriers. It is a major influencer of VRFB performance, but also identified as one of the major factors limiting the large-scale implementation of VRFB technology in energy storage applications due to its cost and durability. In this work, five (5) high-priority characteristics of membranes related to VRFB performance were selected as major considerable factors for membrane screening before in-situ testing. Eight (8) state-of-the-art of commercially available ion exchange membranes (IEMs) were specifically selected, evaluated and compared by a set of ex-situ assessment approaches to determine the possibility of the membranes applied for VRFB. The results recommend perfluorosulfonic acid (PFSA) membranes and hydrocarbon anion exchange membranes (AEMs) as the candidates for further in-situ testing, while one hydrocarbon cation exchange membrane (CEM) is not recommended for VRFB application due to its relatively high VO ion crossover and low mechanical stability during/after the chemical stability test. This work could provide VRFB researchers and industry a valuable reference for selecting the polymer membrane materials before VRFB in-situ testing.

Citing Articles

Stability and Performance of Commercial Membranes in High-Temperature Organic Flow Batteries.

Van Cauter C, Li Y, Van Herck S, Vankelecom I Membranes (Basel). 2024; 14(8).

PMID: 39195429 PMC: 11356106. DOI: 10.3390/membranes14080177.


TiO Containing Hybrid Composite Polymer Membranes for Vanadium Redox Flow Batteries.

Palanisamy G, Oh T Polymers (Basel). 2022; 14(8).

PMID: 35458366 PMC: 9026947. DOI: 10.3390/polym14081617.


Composite Anion Exchange Membranes Fabricated by Coating and UV Crosslinking of Low-Cost Precursors Tested in a Redox Flow Battery.

Charyton M, Deboli F, Fischer P, Henrion G, Etienne M, Donten M Polymers (Basel). 2021; 13(15).

PMID: 34371998 PMC: 8347460. DOI: 10.3390/polym13152396.

References
1.
Nguyen T, Whitehead A, Wai N, Ong S, Scherer G, Xu Z . Equilibrium and Dynamic Absorption of Electrolyte Species in Cation/Anion Exchange Membranes of Vanadium Redox Flow Batteries. ChemSusChem. 2018; 12(5):1076-1083. DOI: 10.1002/cssc.201802522. View

2.
Li Y, Liang L, Liu C, Li Y, Xing W, Sun J . Self-Healing Proton-Exchange Membranes Composed of Nafion-Poly(vinyl alcohol) Complexes for Durable Direct Methanol Fuel Cells. Adv Mater. 2018; 30(25):e1707146. DOI: 10.1002/adma.201707146. View

3.
Schwenzer B, Zhang J, Kim S, Li L, Liu J, Yang Z . Membrane development for vanadium redox flow batteries. ChemSusChem. 2011; 4(10):1388-406. DOI: 10.1002/cssc.201100068. View

4.
Prifti H, Parasuraman A, Winardi S, Lim T, Skyllas-Kazacos M . Membranes for redox flow battery applications. Membranes (Basel). 2014; 2(2):275-306. PMC: 4021890. DOI: 10.3390/membranes2020275. View

5.
Yang Z, Zhang J, Kintner-Meyer M, Lu X, Choi D, Lemmon J . Electrochemical energy storage for green grid. Chem Rev. 2011; 111(5):3577-613. DOI: 10.1021/cr100290v. View