Interaction of cation/anion exchange membrane with vanadium electrolyte in redox flow battery

The Vanadium Redox Flow Battery (VRFB) uses a single active element for both half- cells, limiting cross contamination impacts while maintaining benefits of high energy efficiency and large scale implementation via external energy storage. The VRFB consists of vanadium electrolytes in two half-ce...

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Main Author: Chan, Kai Ler
Other Authors: Xu Zhichuan Jason
Format: Final Year Project
Language:English
Published: 2017
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Online Access:http://hdl.handle.net/10356/71991
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-719912023-03-04T15:34:41Z Interaction of cation/anion exchange membrane with vanadium electrolyte in redox flow battery Chan, Kai Ler Xu Zhichuan Jason School of Materials Science and Engineering DRNTU::Engineering::Materials The Vanadium Redox Flow Battery (VRFB) uses a single active element for both half- cells, limiting cross contamination impacts while maintaining benefits of high energy efficiency and large scale implementation via external energy storage. The VRFB consists of vanadium electrolytes in two half-cells which undergo redox reactions to transfer electrons across two electrodes as ions pass through the exchange membrane between the half-cells to balance the charge. VRFB implements vanadium in both half-cells, elimination cross-contamination problems. However, vanadium ion crossover is observed for cation exchange membranes (CEM) such as Nafion, reducing cell capacity over time. Coupled with high membrane costs, this encourages research into the alternative anion exchange membranes (AEM), such as Fumatech membrane. Fumatech AEM bears chemical stability and ion selectivity required for this application, though selectively transferring hydroxyl anions instead of protons. Using UV-Visible Spectroscopy and Energy Dispersive Spectroscopy (EDS), this AEM was found to adsorb significant amounts of vanadium relative to the CEM, particularly V(V), likely contributing to high resistivity and thus poor cell performance. Thermal sensitivity of the AEM is found to be higher, making it unsuitable for high temperature applications. Electrolyte transfer was also observed for the AEM. Vanadium crossover was reconfirmed in Nafion CEM, though the impact on cell performance is still less significant compared to Fumatech AEM. An overall comparison of cell parameters for both membranes shows Nafion CEM providing greater practicality for VRFB application. Bachelor of Engineering (Materials Engineering) 2017-05-23T07:03:07Z 2017-05-23T07:03:07Z 2017 Final Year Project (FYP) http://hdl.handle.net/10356/71991 en Nanyang Technological University 34 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering::Materials
spellingShingle DRNTU::Engineering::Materials
Chan, Kai Ler
Interaction of cation/anion exchange membrane with vanadium electrolyte in redox flow battery
description The Vanadium Redox Flow Battery (VRFB) uses a single active element for both half- cells, limiting cross contamination impacts while maintaining benefits of high energy efficiency and large scale implementation via external energy storage. The VRFB consists of vanadium electrolytes in two half-cells which undergo redox reactions to transfer electrons across two electrodes as ions pass through the exchange membrane between the half-cells to balance the charge. VRFB implements vanadium in both half-cells, elimination cross-contamination problems. However, vanadium ion crossover is observed for cation exchange membranes (CEM) such as Nafion, reducing cell capacity over time. Coupled with high membrane costs, this encourages research into the alternative anion exchange membranes (AEM), such as Fumatech membrane. Fumatech AEM bears chemical stability and ion selectivity required for this application, though selectively transferring hydroxyl anions instead of protons. Using UV-Visible Spectroscopy and Energy Dispersive Spectroscopy (EDS), this AEM was found to adsorb significant amounts of vanadium relative to the CEM, particularly V(V), likely contributing to high resistivity and thus poor cell performance. Thermal sensitivity of the AEM is found to be higher, making it unsuitable for high temperature applications. Electrolyte transfer was also observed for the AEM. Vanadium crossover was reconfirmed in Nafion CEM, though the impact on cell performance is still less significant compared to Fumatech AEM. An overall comparison of cell parameters for both membranes shows Nafion CEM providing greater practicality for VRFB application.
author2 Xu Zhichuan Jason
author_facet Xu Zhichuan Jason
Chan, Kai Ler
format Final Year Project
author Chan, Kai Ler
author_sort Chan, Kai Ler
title Interaction of cation/anion exchange membrane with vanadium electrolyte in redox flow battery
title_short Interaction of cation/anion exchange membrane with vanadium electrolyte in redox flow battery
title_full Interaction of cation/anion exchange membrane with vanadium electrolyte in redox flow battery
title_fullStr Interaction of cation/anion exchange membrane with vanadium electrolyte in redox flow battery
title_full_unstemmed Interaction of cation/anion exchange membrane with vanadium electrolyte in redox flow battery
title_sort interaction of cation/anion exchange membrane with vanadium electrolyte in redox flow battery
publishDate 2017
url http://hdl.handle.net/10356/71991
_version_ 1759853146691076096