Hydrogen generation electrolyzers: Paving the way for sustainable energy

被引:62
作者
Akyuz, Serhat [1 ]
Telli, Esra [1 ]
Farsak, Murat [2 ,3 ]
机构
[1] Osmaniye Korkut Ata Univ, Energy Syst Engn Dept, Osmaniye, Turkiye
[2] Osmaniye Korkut Ata Univ, Dept Battery Syst & Hydrogen Technol, Osmaniye, Turkiye
[3] Osmaniye Korkut Ata Univ, Dept Hybrid & Elect Vehicles Technol, Osmaniye, Turkiye
关键词
Electrolyzers; Green hydrogen; Hydrogen production; Water electrolysis; MEMBRANE WATER ELECTROLYSIS; POWER-TO-GAS; ELECTROCHEMICAL PERFORMANCE; PEM ELECTROLYZER; CELL; OXIDATION; DESIGN; ELECTROCATALYSTS; TECHNOLOGIES; CATALYST;
D O I
10.1016/j.ijhydene.2024.07.175
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The transition to sustainable energy sources is a global imperative in the face of climate change and dwindling fossil fuel reserves. Hydrogen, as a clean and versatile energy carrier, has garnered significant attention as a potential solution. This paper provides a comprehensive overview of various electrolyzer types, their features, advantages, disadvantages, and future expectations in the context of sustainable energy generation. The article begins by outlining the fundamental principles of electrolysis, highlighting its potential to harness surplus renewable energy. Four main types of electrolyzers are discussed: alkaline electrolyzers, proton exchange membrane electrolyzers, anion exchange membrane electrolyzers, and solid oxide electrolyzers. Each type is explored in depth, with a focus on their unique operating principles, efficiency, scalability, and suitability for different applications. The paper further delves into recent advancements in electrolyzer technology, discussing emerging trends, improved catalysts, and innovative system designs aimed at enhancing efficiency and reducing costs. It also explores the role of policy support and research initiatives in accelerating the adoption of electrolysis for sustainable hydrogen production.
引用
收藏
页码:1338 / 1362
页数:25
相关论文
共 197 条
[1]   Review of photocatalytic water-splitting methods for sustainable hydrogen production [J].
Acar, Canan ;
Dincer, Ibrahim ;
Naterer, Greg F. .
INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2016, 40 (11) :1449-1473
[2]   Estimating the energy of intramolecular hydrogen bonds from 1H NMR and QTAIM calculations [J].
Afonin, Andrei V. ;
Vashchenko, Alexander V. ;
Sigalov, Mark V. .
ORGANIC & BIOMOLECULAR CHEMISTRY, 2016, 14 (47) :11199-11211
[3]   The economics and the environmental benignity of different colors of hydrogen [J].
Ajanovic, A. ;
Sayer, M. ;
Haas, R. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2022, 47 (57) :24136-24154
[4]   Biohydrogen: A life cycle assessment and comparison with alternative low-carbon production routes in UK [J].
Amaya-Santos, Gema ;
Chari, Suviti ;
Sebastiani, Alex ;
Grimaldi, Fabio ;
Lettieri, Paola ;
Materazzi, Massimiliano .
JOURNAL OF CLEANER PRODUCTION, 2021, 319
[5]  
[Anonymous], 2022, Global hydrogen review 2022, DOI DOI 10.1787/A15B8442-EN
[6]  
[Anonymous], 2023, Net Zero Roadmap: A Global Pathway to Keep the 1.5 C Goal in Reach-2023 Update
[7]   Compressive Creep of Polymer Electrolyte Membranes: A Case Study for Electrolyzers [J].
Arthurs, Claire ;
Kusoglu, Ahmet .
ACS APPLIED ENERGY MATERIALS, 2021, 4 (04) :3249-3254
[8]  
Aydinli E, 2022, Sağlık Bilimlerinde Değer, V12, P171, DOI [10.33631/sabd.1055536, 10.33631/sabd.1055536, DOI 10.33631/SABD.1055536]
[9]  
B. E. O, 2022, Energy consumption worldwide from 2000 to 2019, with a forecast until 2050, by energy source
[10]   Global transcriptomic analysis suggests carbon dioxide as an environmental stressor in spaceflight: A systems biology GeneLab case study [J].
Beheshti, Afshin ;
Cekanaviciute, Egle ;
Smith, David J. ;
Costes, Sylvain V. .
SCIENTIFIC REPORTS, 2018, 8