Alkaline Water Electrolysis for Green Hydrogen Production
Щелочной электролиз воды для производства экологически чистого водорода
2024-02-09
SCID: 54.1/dz92c7vh
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alkaline water electrolysiselectrocatalystsgreen hydrogen productionhydrogen evolution reaction (HER)oxygen evolution reaction (OER)
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Abstract (AI)
High Resolution Image Download MS PowerPoint Slide Conspectus The global energy landscape is undergoing significant change. Hydrogen is seen as the energy carrier of the future and will be a key element in the development of more sustainable industry and society. However, hydrogen is currently produced mainly from fossil fuels, and this needs to change. Alkaline water electrolysis with advanced technology has the most significant potential for this transition to produce large-scale green hydrogen by utilizing renewable energy. The assembly of industrial electrolyzer plants is more complex on a larger scale, but it follows a basic working principle, which involves two half-cells of anode and cathode sites where the oxygen evolution reaction (OER) and hydrogen evolution reaction (HER) occur. Out of the two reactions, the OER is more challenging both thermodynamically and kinetically. Besides having access to renewable electricity, developing durable and abundant electrocatalysts for the OER remains a challenge in large-scale alkaline water electrolysis. Among different physicochemical properties, the electrocatalyst surface and its interaction with water and reaction intermediates, as well as formed molecular hydrogen and oxygen, play an essential role in the catalytic performance and the reaction mechanism. In particular, the binding strengths between the catalyst surface and intermediates determine the rate-limiting step and electrocatalytic performance. This Account gives some insights into the status of the hydrogen economy and basic principles of alkaline water electrolysis by covering its fundamentals as well as industrial developments. Further, the HER and OER reaction mechanisms of alkaline water electrolysis and selected electrocatalyst progress for both half-reactions are briefly discussed. The Adsorbate Evolution Mechanism and the Lattice Oxygen Mechanism for the OER are explained with specific references. This Account also deliberates on the author’s selected contributions to the development of transition metal-based electrocatalysts for alkaline water electrolysis with an emphasis on OER. The focus is particularly given to the enhancement of intrinsic activity, the role of e g -filling, phase segregation, and defect structure of cobalt-based electrocatalysts for OER. Structural modification and phase transformation of the cobalt oxide electrocatalyst under working conditions are further deliberated. In addition, the creation of new active surface species and the activation of cobalt- and nickel-based electrocatalysts through iron uptake from the alkaline electrolyte are discussed. In the end, this Account provides a brief overview of challenges related to large-scale production and utilization of green hydrogen.
Key Findings
1
Advanced alkaline water electrolysis is identified as having substantial potential for large-scale green hydrogen production powered by renewable energy.
2
Catalyst-surface interactions with water, reaction intermediates, and generated gases strongly influence catalytic performance and reaction mechanisms.
3
Durable, earth-abundant oxygen-evolution electrocatalysts remain a major barrier to scaling alkaline water electrolysis beyond access to renewable electricity.
4
Industrial alkaline electrolyzers use coupled cathodic hydrogen evolution and anodic oxygen evolution reactions, with oxygen evolution being the more thermodynamically and kinetically challenging half-reaction.
5
Intermediate binding strengths determine the rate-limiting step and overall electrocatalytic performance; both adsorbate evolution and lattice oxygen mechanisms are relevant to alkaline oxygen evolution.
Research Object
alkaline water electrolysis systems for large-scale green hydrogen production
Research Subject
the OER and HER reaction mechanisms and the durability, surface interactions, and electrocatalytic performance of alkaline-water-electrolysis catalysts
Publication Details
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2024-02-09
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