Publication: Current Status and Future Prospects of Power-To-Hydrogen Towards 100% Renewable Energy
| dc.contributor.author | Acar, Canan | |
| dc.contributor.institution | Acar, Canan, Thermal Engineering, Universiteit Twente, Enschede, Netherlands, Faculty of Engineering and Natural Sciences, Bahçeşehir Üniversitesi, Istanbul, Turkey | |
| dc.date.accessioned | 2025-10-05T15:22:47Z | |
| dc.date.issued | 2022 | |
| dc.description.abstract | Transitioning to 100% renewable energy systems is an ambitious yet critical necessity to dramatically reduce emissions and slow down the planet’s persistent warming. However, renewable energy sources are not constant, and their nature can be sporadic. Therefore, it is essential to find adequate storage strategies for renewable energy sources. With renewable power-to-hydrogen, excess renewable energy can be stored in hydrogen form for use when the sources are not available. In hydrogen form, energy can be kept for longer durations and distributed to longer distances than in electricity. The use of hydrogen could be for power generation in the industry, transportation, heating or cooling buildings, and many other sectors. Furthermore, renewable power-to-hydrogen can accelerate the transition to 100% renewable-based, decarbonized energy systems, and economies and increase the grid reliability and flexibility. This study aims to provide an in-depth analysis of the current status and future prospects of renewable power-to-hydrogen towards a 100% renewable energy-based future with this motivation. Global warming potential, acidification potential, the social cost of carbon, price, and thermodynamic efficiencies of the three most common renewable power-to-hydrogen methods are comparatively assessed. The strengths and weaknesses of each technique are discussed, and future research directions are provided. Besides, the future prospects of renewable power-to-hydrogen are provided in terms of its use in buildings, industry, and transportation. © 2024 Elsevier B.V., All rights reserved. | |
| dc.identifier.doi | 10.1007/978-3-031-05125-8_28 | |
| dc.identifier.endpage | 690 | |
| dc.identifier.issn | 21951284 | |
| dc.identifier.issn | 21951292 | |
| dc.identifier.scopus | 2-s2.0-85141194809 | |
| dc.identifier.startpage | 667 | |
| dc.identifier.uri | https://doi.org/10.1007/978-3-031-05125-8_28 | |
| dc.identifier.uri | https://hdl.handle.net/20.500.14719/9054 | |
| dc.identifier.volume | 87 | |
| dc.language.iso | en | |
| dc.publisher | Springer Science and Business Media Deutschland GmbH | |
| dc.relation.oastatus | All Open Access | |
| dc.relation.oastatus | Green Accepted Open Access | |
| dc.relation.oastatus | Green Open Access | |
| dc.relation.source | Lecture Notes in Energy | |
| dc.subject.authorkeywords | Clean Energy | |
| dc.subject.authorkeywords | Hydrogen | |
| dc.subject.authorkeywords | Net-zero Carbon | |
| dc.subject.authorkeywords | Power-to-gas | |
| dc.subject.authorkeywords | Power-to-hydrogen | |
| dc.subject.authorkeywords | Sustainability | |
| dc.subject.authorkeywords | Carbon | |
| dc.subject.authorkeywords | Global Warming | |
| dc.subject.authorkeywords | Natural Resources | |
| dc.subject.authorkeywords | Clean Energy | |
| dc.subject.authorkeywords | Future Prospects | |
| dc.subject.authorkeywords | Net-zero Carbon | |
| dc.subject.authorkeywords | Power | |
| dc.subject.authorkeywords | Power-to-gas | |
| dc.subject.authorkeywords | Power-to-hydrogen | |
| dc.subject.authorkeywords | Renewable Energies | |
| dc.subject.authorkeywords | Renewable Power | |
| dc.subject.authorkeywords | Zero Carbons | |
| dc.subject.authorkeywords | Renewable Energy Resources | |
| dc.subject.indexkeywords | Carbon | |
| dc.subject.indexkeywords | Global warming | |
| dc.subject.indexkeywords | Natural resources | |
| dc.subject.indexkeywords | Clean energy | |
| dc.subject.indexkeywords | Future prospects | |
| dc.subject.indexkeywords | Net-zero carbon | |
| dc.subject.indexkeywords | Power | |
| dc.subject.indexkeywords | Power-to-gas | |
| dc.subject.indexkeywords | Power-to-hydrogen | |
| dc.subject.indexkeywords | Renewable energies | |
| dc.subject.indexkeywords | Renewable Power | |
| dc.subject.indexkeywords | Zero carbons | |
| dc.subject.indexkeywords | Renewable energy resources | |
| dc.title | Current Status and Future Prospects of Power-To-Hydrogen Towards 100% Renewable Energy | |
| dc.type | Book Chapter | |
| dcterms.references | Acar, Canan, Comparative assessment of hydrogen production methods from renewable and non-renewable sources, International Journal of Hydrogen Energy, 39, 1, pp. 1-12, (2014), Cradle to Grave Lifecycle Analysis of U S Light Duty Vehicle Fuel Pathways A Greenhouse Gas Emissions and Economic Assessment of Current 2015 and Future 2025 2030 Technologies, (2016), Ramchandra, Bhandari, Life cycle assessment of hydrogen production via electrolysis - A review, Journal of Cleaner Production, 85, pp. 151-163, (2014), Burton, N. A., Increasing the efficiency of hydrogen production from solar powered water electrolysis, Renewable and Sustainable Energy Reviews, 135, (2021), Buttler, Alexander, Current status of water electrolysis for energy storage, grid balancing and sector coupling via power-to-gas and power-to-liquids: A review, Renewable and Sustainable Energy Reviews, 82, pp. 2440-2454, (2018), de Vries, Harmen, The impact of natural gas/hydrogen mixtures on the performance of end-use equipment: Interchangeability analysis for domestic appliances, Applied Energy, 208, pp. 1007-1019, (2017), Fueling the Future of Mobility Hydrogen and Fuel Cell Solutions for Transportation, (2020), Dincer, I., Review and evaluation of hydrogen production methods for better sustainability, International Journal of Hydrogen Energy, 40, 34, pp. 11094-11111, (2014), El-Bassuoni, Abdel Monem A., Hydrogen and fresh water production from sea water, International Journal of Hydrogen Energy, 7, 12, pp. 919-923, (1982), Chakik, Fatima ezzahra, Effect of operating parameters on hydrogen production by electrolysis of water, International Journal of Hydrogen Energy, 42, 40, pp. 25550-25557, (2017) | |
| dspace.entity.type | Publication | |
| local.indexed.at | Scopus | |
| person.identifier.scopus-author-id | 36026431500 |
