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The Acid–Base Flow Battery: Sustainable Energy Storage via Reversible Water Dissociation with Bipolar Membranes

The increasing share of renewables in electric grids nowadays causes a growing daily and seasonal mismatch between electricity generation and demand. In this regard, novel energy storage systems need to be developed, to allow large-scale storage of the excess electricity during low-demand time, and...

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Autores principales: Pärnamäe, Ragne, Gurreri, Luigi, Post, Jan, van Egmond, Willem Johannes, Culcasi, Andrea, Saakes, Michel, Cen, Jiajun, Goosen, Emil, Tamburini, Alessandro, Vermaas, David A., Tedesco, Michele
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7763125/
https://www.ncbi.nlm.nih.gov/pubmed/33321795
http://dx.doi.org/10.3390/membranes10120409
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author Pärnamäe, Ragne
Gurreri, Luigi
Post, Jan
van Egmond, Willem Johannes
Culcasi, Andrea
Saakes, Michel
Cen, Jiajun
Goosen, Emil
Tamburini, Alessandro
Vermaas, David A.
Tedesco, Michele
author_facet Pärnamäe, Ragne
Gurreri, Luigi
Post, Jan
van Egmond, Willem Johannes
Culcasi, Andrea
Saakes, Michel
Cen, Jiajun
Goosen, Emil
Tamburini, Alessandro
Vermaas, David A.
Tedesco, Michele
author_sort Pärnamäe, Ragne
collection PubMed
description The increasing share of renewables in electric grids nowadays causes a growing daily and seasonal mismatch between electricity generation and demand. In this regard, novel energy storage systems need to be developed, to allow large-scale storage of the excess electricity during low-demand time, and its distribution during peak demand time. Acid–base flow battery (ABFB) is a novel and environmentally friendly technology based on the reversible water dissociation by bipolar membranes, and it stores electricity in the form of chemical energy in acid and base solutions. The technology has already been demonstrated at the laboratory scale, and the experimental testing of the first 1 kW pilot plant is currently ongoing. This work aims to describe the current development and the perspectives of the ABFB technology. In particular, we discuss the main technical challenges related to the development of battery components (membranes, electrolyte solutions, and stack design), as well as simulated scenarios, to demonstrate the technology at the kW–MW scale. Finally, we present an economic analysis for a first 100 kW commercial unit and suggest future directions for further technology scale-up and commercial deployment.
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spelling pubmed-77631252020-12-27 The Acid–Base Flow Battery: Sustainable Energy Storage via Reversible Water Dissociation with Bipolar Membranes Pärnamäe, Ragne Gurreri, Luigi Post, Jan van Egmond, Willem Johannes Culcasi, Andrea Saakes, Michel Cen, Jiajun Goosen, Emil Tamburini, Alessandro Vermaas, David A. Tedesco, Michele Membranes (Basel) Perspective The increasing share of renewables in electric grids nowadays causes a growing daily and seasonal mismatch between electricity generation and demand. In this regard, novel energy storage systems need to be developed, to allow large-scale storage of the excess electricity during low-demand time, and its distribution during peak demand time. Acid–base flow battery (ABFB) is a novel and environmentally friendly technology based on the reversible water dissociation by bipolar membranes, and it stores electricity in the form of chemical energy in acid and base solutions. The technology has already been demonstrated at the laboratory scale, and the experimental testing of the first 1 kW pilot plant is currently ongoing. This work aims to describe the current development and the perspectives of the ABFB technology. In particular, we discuss the main technical challenges related to the development of battery components (membranes, electrolyte solutions, and stack design), as well as simulated scenarios, to demonstrate the technology at the kW–MW scale. Finally, we present an economic analysis for a first 100 kW commercial unit and suggest future directions for further technology scale-up and commercial deployment. MDPI 2020-12-10 /pmc/articles/PMC7763125/ /pubmed/33321795 http://dx.doi.org/10.3390/membranes10120409 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Perspective
Pärnamäe, Ragne
Gurreri, Luigi
Post, Jan
van Egmond, Willem Johannes
Culcasi, Andrea
Saakes, Michel
Cen, Jiajun
Goosen, Emil
Tamburini, Alessandro
Vermaas, David A.
Tedesco, Michele
The Acid–Base Flow Battery: Sustainable Energy Storage via Reversible Water Dissociation with Bipolar Membranes
title The Acid–Base Flow Battery: Sustainable Energy Storage via Reversible Water Dissociation with Bipolar Membranes
title_full The Acid–Base Flow Battery: Sustainable Energy Storage via Reversible Water Dissociation with Bipolar Membranes
title_fullStr The Acid–Base Flow Battery: Sustainable Energy Storage via Reversible Water Dissociation with Bipolar Membranes
title_full_unstemmed The Acid–Base Flow Battery: Sustainable Energy Storage via Reversible Water Dissociation with Bipolar Membranes
title_short The Acid–Base Flow Battery: Sustainable Energy Storage via Reversible Water Dissociation with Bipolar Membranes
title_sort acid–base flow battery: sustainable energy storage via reversible water dissociation with bipolar membranes
topic Perspective
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7763125/
https://www.ncbi.nlm.nih.gov/pubmed/33321795
http://dx.doi.org/10.3390/membranes10120409
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