LAPSE:2023.17061
Published Article

LAPSE:2023.17061
Review of the Hydrogen Evolution Reaction—A Basic Approach
March 6, 2023
Abstract
An increasing emphasis on energy storage has resulted in a surge of R&D efforts into producing catalyst materials for the hydrogen evolution reaction (HER) with emphasis on decreasing the usage of platinum group metals (PGMs). Alkaline water electrolysis holds promise for satisfying future energy storage demands, however the intrinsic potential of this technology is impeded by sluggish reaction kinetics. Here, we summarize the latest efforts within alkaline HER electrocatalyst design, where these efforts are divided between three catalyst design strategies inspired by the three prevailing theories describing the pH-dependence of the HER activity. Modifying the electronic structure of a host through codoping and creating specific sites for hydrogen/hydroxide adsorption stand out as promising strategies. However, with the vast amount of possible combinations, emphasis on screening parameters is important. The authors predict that creating a codoped catalyst using the first strategy by screening materials based on their hydrogen, hydroxide and water binding energies, and utilizing the second and third strategies as optimization parameters might yield both active and stable HER catalyst materials. This strategy has the potential to greatly advance the current status of alkaline water electrolysis as an energy storage option.
An increasing emphasis on energy storage has resulted in a surge of R&D efforts into producing catalyst materials for the hydrogen evolution reaction (HER) with emphasis on decreasing the usage of platinum group metals (PGMs). Alkaline water electrolysis holds promise for satisfying future energy storage demands, however the intrinsic potential of this technology is impeded by sluggish reaction kinetics. Here, we summarize the latest efforts within alkaline HER electrocatalyst design, where these efforts are divided between three catalyst design strategies inspired by the three prevailing theories describing the pH-dependence of the HER activity. Modifying the electronic structure of a host through codoping and creating specific sites for hydrogen/hydroxide adsorption stand out as promising strategies. However, with the vast amount of possible combinations, emphasis on screening parameters is important. The authors predict that creating a codoped catalyst using the first strategy by screening materials based on their hydrogen, hydroxide and water binding energies, and utilizing the second and third strategies as optimization parameters might yield both active and stable HER catalyst materials. This strategy has the potential to greatly advance the current status of alkaline water electrolysis as an energy storage option.
Record ID
Keywords
AEM electrolysis, alkaline HER, alkaline hydrogen evolution reaction, anion exchange membrane electrolysis, catalyst materials, water electrolysis
Subject
Suggested Citation
Ferriday TB, Middleton PH, Kolhe ML. Review of the Hydrogen Evolution Reaction—A Basic Approach. (2023). LAPSE:2023.17061
Author Affiliations
Ferriday TB: Department of Engineering Science, University of Agder, 4879 Grimstad, Norway
Middleton PH: Department of Engineering Science, University of Agder, 4879 Grimstad, Norway
Kolhe ML: Department of Engineering Science, University of Agder, 4879 Grimstad, Norway [ORCID]
Middleton PH: Department of Engineering Science, University of Agder, 4879 Grimstad, Norway
Kolhe ML: Department of Engineering Science, University of Agder, 4879 Grimstad, Norway [ORCID]
Journal Name
Energies
Volume
14
Issue
24
First Page
8535
Year
2021
Publication Date
2021-12-17
ISSN
1996-1073
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Original Submission
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PII: en14248535, Publication Type: Review
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LAPSE:2023.17061
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https://doi.org/10.3390/en14248535
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