Recent Developments on Hydrogen Production Technologies: State-of-the-Art Review with a Focus on Green-Electrolysis
Последние разработки в области технологий производства водорода: современный обзор с акцентом на зеленый электролиз
2021-11-30
SCID: 54.1/pyhjqmh6
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green electrolysisproton-exchange membrane electrolysisrenewable hydrogensolid oxide electrolysiswater splitting
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Abstract (AI)
Growing human activity has led to a critical rise in global energy consumption; since the current main sources of energy production are still fossil fuels, this is an industry linked to the generation of harmful byproducts that contribute to environmental deterioration and climate change. One pivotal element with the potential to take over fossil fuels as a global energy vector is renewable hydrogen; but, for this to happen, reliable solutions must be developed for its carbon-free production. The objective of this study was to perform a comprehensive review on several hydrogen production technologies, mainly focusing on water splitting by green-electrolysis, integrated on hydrogen’s value chain. The review further deepened into three leading electrolysis methods, depending on the type of electrolyzer used—alkaline, proton-exchange membrane, and solid oxide—assessing their characteristics, advantages, and disadvantages. Based on the conclusions of this study, further developments in applications like the efficient production of renewable hydrogen will require the consideration of other types of electrolysis (like microbial cells), other sets of materials such as in anion-exchange membrane water electrolysis, and even the use of artificial intelligence and neural networks to help design, plan, and control the operation of these new types of systems.
Key Findings
1
Alkaline, proton-exchange membrane, and solid oxide electrolysis are examined as leading technologies, with their respective characteristics, advantages, and disadvantages assessed.
2
Future advances in efficient renewable hydrogen production should consider microbial electrolysis, anion-exchange membrane materials, and artificial intelligence or neural networks for system design, planning, and control.
3
Renewable hydrogen could replace fossil fuels as a global energy vector, but reliable carbon-free production technologies remain necessary.
4
The review comprehensively evaluates hydrogen production technologies within the broader hydrogen value chain, emphasizing water splitting through green electrolysis.
Research Object
hydrogen production technologies, with a focus on water splitting by green electrolysis
Research Subject
the characteristics, advantages, disadvantages, and development requirements of alkaline, proton-exchange membrane, and solid oxide electrolysis for carbon-free renewable hydrogen production
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2021-11-30
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