Review—Recent Membranes for Vanadium Redox Flow Batteries
Обзор — современные мембраны для ванадиевых проточных окислительно-восстановительных батарей
2021-07-01
SCID: 54.1/v27mh7qu
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VRFB membranesion transport mechanismsmembrane characterizationvanadium ion permeabilityvanadium redox flow batteries
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Abstract (AI)
Among energy storage technologies available or currently being developed, one of the most promising and attractive electrochemical system is the vanadium redox flow battery (VRFB). One of the key components in VRFB is the membrane required to separate the positive and negative half-cells. The role of this membrane is to prevent cross-mixing of vanadium ions while allowing the transport of certain ions to maintain the electrolytes’ electro-neutrality. Such a membrane represents a sizeable fraction of the system’s total cost while significantly affecting performance. Current research mostly consists of developing high-performance membranes offering high ionic conductivity, low permeability to vanadium ions, and good chemical and mechanical stability. A lower membrane cost is also desirable in order to reduce the overall system costs. This paper provides a comprehensive review of VRFB membranes and recent developments to allow for a better understanding of VRFB membranes’ characterization techniques and their different manufacturing methods, while exploring materials suitable as VRFB membrane. Modeling of ion transport mechanisms through the separator and development prospects for a high-performance VRFB membrane are also discussed. The characteristics of the newly developed membranes are summarized to serve as a reference guide for researchers.
Key Findings
1
High-performance VRFB membranes require high ionic conductivity, low vanadium-ion permeability, and strong chemical and mechanical stability.
2
Membrane properties strongly influence VRFB performance and represent a substantial portion of total system cost.
3
Summarized characteristics of newly developed membranes provide a reference for evaluating future high-performance, lower-cost VRFB separators.
4
The review comprehensively examines membrane characterization techniques, manufacturing methods, candidate materials, and ion-transport modeling.
5
VRFB membranes must prevent vanadium-ion crossover while transporting selected ions to preserve electrolyte electroneutrality.
Research Object
Membranes used as separators in vanadium redox flow batteries (VRFBs)
Research Subject
Membrane ion-transport, selectivity, conductivity, permeability, chemical and mechanical stability, cost, characterization, fabrication, and modeling for VRFB performance
Publication Details
Publication Date
2021-07-01
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