Graphene oxide (GO) has attracted tremendous attention in membrane-based separation field as it can filter ions and molecules. Recently, GO-based materials have emerged as excellent modifiers for vanadium redox flow battery (VRFB) application. Its high mechanical and chemical stability, nearly frictionless surface, high flexibility, and low cost make GO-based materials as proper materials for the membranes in VRFB. In VRFB, a membrane acts as the key component to determine the performance. Therefore, employing low vanadium ion permeability with excellent stability membrane in vanadium electrolytes is important to ensure high battery performance. Herein, recent progress of GO-modified membranes for VRFB is briefly reviewed. This review begin...
The vanadium redox flow battery (VRB) has received considerable attention due to its long cycle life...
The application of vanadium redox flow batteries (VRFBs) has encountered challenges because the most...
Graphene oxide (GO) is an atomically-thick, two-dimensional nanomaterial decorated with an abundance...
Graphene oxide (GO) has attracted tremendous attention in membrane-based separation field as it can ...
The research work examines effects of organic-inorganic hybrid membrane made of low-cost sulfonated ...
The Vanadium Redox Flow Battery (VRFB) has been garnering more usage and recognition due to its exte...
The increase in renewable energy penetration to grids and micro-grids resulted in increase in use of...
Battery storage systems become increasingly more important to fulfil large demands in peaks of energ...
The increasing share of renewable energy sources in the total energy production emphasizes the need ...
Energy storage is a solution to the problem of renewable energy intermittency. The vanadium redox fl...
It is predicted that the future of energy will mainly rely on batteries such as vanadium redox flow ...
Porous nanohybrid membranes of polysulfone (PSF) with graphene oxide (GO) nanosheets (PSF/GO membran...
The laminated structure of graphene oxide (GO) membranes provides exceptional ion-separation propert...
Vanadium redox flow batteries (VRFBs) exhibit great promise as easily scalable, long-lasting, modula...
The need for large scale energy storage has become a priority to integrate renewable energy sources ...
The vanadium redox flow battery (VRB) has received considerable attention due to its long cycle life...
The application of vanadium redox flow batteries (VRFBs) has encountered challenges because the most...
Graphene oxide (GO) is an atomically-thick, two-dimensional nanomaterial decorated with an abundance...
Graphene oxide (GO) has attracted tremendous attention in membrane-based separation field as it can ...
The research work examines effects of organic-inorganic hybrid membrane made of low-cost sulfonated ...
The Vanadium Redox Flow Battery (VRFB) has been garnering more usage and recognition due to its exte...
The increase in renewable energy penetration to grids and micro-grids resulted in increase in use of...
Battery storage systems become increasingly more important to fulfil large demands in peaks of energ...
The increasing share of renewable energy sources in the total energy production emphasizes the need ...
Energy storage is a solution to the problem of renewable energy intermittency. The vanadium redox fl...
It is predicted that the future of energy will mainly rely on batteries such as vanadium redox flow ...
Porous nanohybrid membranes of polysulfone (PSF) with graphene oxide (GO) nanosheets (PSF/GO membran...
The laminated structure of graphene oxide (GO) membranes provides exceptional ion-separation propert...
Vanadium redox flow batteries (VRFBs) exhibit great promise as easily scalable, long-lasting, modula...
The need for large scale energy storage has become a priority to integrate renewable energy sources ...
The vanadium redox flow battery (VRB) has received considerable attention due to its long cycle life...
The application of vanadium redox flow batteries (VRFBs) has encountered challenges because the most...
Graphene oxide (GO) is an atomically-thick, two-dimensional nanomaterial decorated with an abundance...