Bipolar Membranes for Direct Borohydride Fuel Cells—A Review
Биполярные мембраны для прямых боргидридных топливных элементов — обзор
2023-08-13
SCID: 54.1/5v7k8t7n
Discuss with AI
anion- and cation-exchange membranesbipolar membranesdirect borohydride fuel cellshydrogen peroxidesodium borohydride
Figures from the paper
Abstract (AI)
Direct liquid fuel cells (DLFCs) operate directly on liquid fuel instead of hydrogen, as in proton-exchange membrane fuel cells. DLFCs have the advantages of higher energy densities and fewer issues with the transportation and storage of their fuels compared with compressed hydrogen and are adapted to mobile applications. Among DLFCs, the direct borohydride–hydrogen peroxide fuel cell (DBPFC) is one of the most promising liquid fuel cell technologies. DBPFCs are fed sodium borohydride (NaBH4) as the fuel and hydrogen peroxide (H2O2) as the oxidant. Introducing H2O2 as the oxidant brings further advantages to DBPFC regarding higher theoretical cell voltage (3.01 V) than typical direct borohydride fuel cells operating on oxygen (1.64 V). The present review examines different membrane types for use in borohydride fuel cells, particularly emphasizing the importance of using bipolar membranes (BPMs). The combination of a cation-exchange membrane (CEM) and anion-exchange membrane (AEM) in the structure of BPMs makes them ideal for DBPFCs. BPMs maintain the required pH gradient between the alkaline NaBH4 anolyte and the acidic H2O2 catholyte, efficiently preventing the crossover of the involved species. This review highlights the vast potential application of BPMs and the need for ongoing research and development in DBPFCs. This will allow for fully realizing the significance of BPMs and their potential application, as there is still not enough published research in the field.
Key Findings
1
Bipolar membranes combine cation-exchange and anion-exchange layers, making them particularly suitable for direct borohydride–hydrogen peroxide fuel cells.
2
Bipolar membranes efficiently limit crossover of reactants and other participating species between the fuel-cell compartments.
3
Bipolar membranes maintain the alkaline–acidic pH gradient between the sodium borohydride anolyte and hydrogen peroxide catholyte.
4
Direct borohydride–hydrogen peroxide fuel cells use sodium borohydride and hydrogen peroxide, offering a theoretical cell voltage of 3.01 V versus 1.64 V for oxygen-based direct borohydride cells.
5
The review identifies substantial potential for bipolar membranes in direct borohydride fuel cells, while noting that limited published research necessitates further development.
Research Object
bipolar membranes in direct borohydride–hydrogen peroxide fuel cells
Research Subject
the role and performance of bipolar membranes in maintaining the alkaline–acidic pH gradient and preventing species crossover in direct borohydride–hydrogen peroxide fuel cells
Publication Details
Publication Date
2023-08-13
Journal
Publisher
ISSN
Cited by
14
Open access PDF
Access Type
Author Information
Download PDF
Subscribe to digest