Publication: Solar hydrogen’s role for a sustainable future
| dc.contributor.author | Acar, Canan | |
| dc.contributor.institution | Acar, Canan, Faculty of Engineering and Natural Sciences, Bahçeşehir Üniversitesi, Istanbul, Turkey | |
| dc.date.accessioned | 2025-10-05T15:53:06Z | |
| dc.date.issued | 2020 | |
| dc.description.abstract | In this study, hydrogen’s role during the transition to 100% renewable energy systems is discussed thoroughly, and the importance of sustainable hydrogen production is highlighted. For a successful transition to hydrogen-based renewable energy systems, hydrogen has to be produced in a clean, reliable, affordable, efficient, and safe manner. Therefore, in the second part of this study, a comprehensive life cycle assessment of solar hydrogen production options is conducted. The selected clean hydrogen production options are steam methane reforming, conventional electrolysis, photoelectrochemical cells, PV electrolysis, and photocatalysis. A complete source to service approach is taken when evaluating the environmental and technical performance of the selected hydrogen production options. Greenhouse gas (GHG) emissions, resource use, fossil fuel use, water use, energy and exergy efficiencies, and cost of hydrogen are the selected sustainability performance criteria. The selected hydrogen production methods are compared based on these performance criteria. In the next part, the performance evaluation results of each option are normalized and ranked in the 0–10 range where 0 gives the least sustainable manner, and 10 is the hypothetical ideal case where there is no damage to the environment, zero resource and water use, and 100% energy and exergy efficiencies, and zero cost. The GHG emissions, resource use, fossil fuel use, and water use results indicate that photoelectrochemical cells (PEC) is the most advantageous. Steam methane reforming has the highest efficiencies and the lowest. When all of the selected performance criteria are considered together, PEC has the highest sustainability rankings (5.24/10), and steam methane reforming has the lowest (3.24/10). © 2020 Elsevier B.V., All rights reserved. | |
| dc.identifier.doi | 10.1007/978-3-030-40738-4_14 | |
| dc.identifier.endpage | 331 | |
| dc.identifier.issn | 21951284 | |
| dc.identifier.issn | 21951292 | |
| dc.identifier.scopus | 2-s2.0-85087041206 | |
| dc.identifier.startpage | 309 | |
| dc.identifier.uri | https://doi.org/10.1007/978-3-030-40738-4_14 | |
| dc.identifier.uri | https://hdl.handle.net/20.500.14719/10788 | |
| dc.identifier.volume | 74 | |
| dc.language.iso | en | |
| dc.publisher | Springer | |
| dc.relation.source | Lecture Notes in Energy | |
| dc.subject.authorkeywords | Energy | |
| dc.subject.authorkeywords | Exergy | |
| dc.subject.authorkeywords | Hydrogen | |
| dc.subject.authorkeywords | Solar | |
| dc.subject.authorkeywords | Sustainability | |
| dc.subject.authorkeywords | Electrochemical Cells | |
| dc.subject.authorkeywords | Electrolysis | |
| dc.subject.authorkeywords | Exergy | |
| dc.subject.authorkeywords | Fossil Fuel Deposits | |
| dc.subject.authorkeywords | Fossil Fuels | |
| dc.subject.authorkeywords | Gas Emissions | |
| dc.subject.authorkeywords | Greenhouse Gases | |
| dc.subject.authorkeywords | Hydrogen Fuels | |
| dc.subject.authorkeywords | Life Cycle | |
| dc.subject.authorkeywords | Methane | |
| dc.subject.authorkeywords | Photoelectrochemical Cells | |
| dc.subject.authorkeywords | Renewable Energy Resources | |
| dc.subject.authorkeywords | Solar Power Generation | |
| dc.subject.authorkeywords | Steam Reforming | |
| dc.subject.authorkeywords | Sustainable Development | |
| dc.subject.authorkeywords | Water Conservation | |
| dc.subject.authorkeywords | Water Resources | |
| dc.subject.authorkeywords | 100% Renewable Energy Systems | |
| dc.subject.authorkeywords | Energy And Exergy Efficiency | |
| dc.subject.authorkeywords | Hydrogen Production Method | |
| dc.subject.authorkeywords | Life Cycle Assessment (lca) | |
| dc.subject.authorkeywords | Renewable Energy Systems | |
| dc.subject.authorkeywords | Solar Hydrogen Production | |
| dc.subject.authorkeywords | Sustainability Performance | |
| dc.subject.authorkeywords | Technical Performance | |
| dc.subject.authorkeywords | Hydrogen Production | |
| dc.subject.indexkeywords | Electrochemical cells | |
| dc.subject.indexkeywords | Electrolysis | |
| dc.subject.indexkeywords | Exergy | |
| dc.subject.indexkeywords | Fossil fuel deposits | |
| dc.subject.indexkeywords | Fossil fuels | |
| dc.subject.indexkeywords | Gas emissions | |
| dc.subject.indexkeywords | Greenhouse gases | |
| dc.subject.indexkeywords | Hydrogen fuels | |
| dc.subject.indexkeywords | Life cycle | |
| dc.subject.indexkeywords | Methane | |
| dc.subject.indexkeywords | Photoelectrochemical cells | |
| dc.subject.indexkeywords | Renewable energy resources | |
| dc.subject.indexkeywords | Solar power generation | |
| dc.subject.indexkeywords | Steam reforming | |
| dc.subject.indexkeywords | Sustainable development | |
| dc.subject.indexkeywords | Water conservation | |
| dc.subject.indexkeywords | Water resources | |
| dc.subject.indexkeywords | 100% renewable energy systems | |
| dc.subject.indexkeywords | Energy and exergy efficiency | |
| dc.subject.indexkeywords | Hydrogen production method | |
| dc.subject.indexkeywords | Life Cycle Assessment (LCA) | |
| dc.subject.indexkeywords | Renewable energy systems | |
| dc.subject.indexkeywords | Solar Hydrogen Production | |
| dc.subject.indexkeywords | Sustainability performance | |
| dc.subject.indexkeywords | Technical performance | |
| dc.subject.indexkeywords | Hydrogen production | |
| dc.title | Solar hydrogen’s role for a sustainable future | |
| dc.type | Book Chapter | |
| dcterms.references | Acar, Canan, Review and evaluation of hydrogen production options for better environment, Journal of Cleaner Production, 218, pp. 835-849, (2019), Acar, Canan, Review of photocatalytic water-splitting methods for sustainable hydrogen production, International Journal of Energy Research, 40, 11, pp. 1449-1473, (2016), Ahmed, Mahmoud A., A review on photoelectrochemical hydrogen production systems: Challenges and future directions, International Journal of Hydrogen Energy, 44, 5, pp. 2474-2507, (2019), Bhattacharyya, Rupsha, Photovoltaic solar energy conversion for hydrogen production by alkaline water electrolysis: Conceptual design and analysis, Energy Conversion and Management, 133, pp. 1-13, (2017), Bolatkhan, K., Hydrogen production from phototrophic microorganisms: Reality and perspectives, International Journal of Hydrogen Energy, 44, 12, pp. 5799-5811, (2019), Dahbi, Sanae, Optimised hydrogen production by a photovoltaic-electrolysis system DC/DC converter and water flow controller, International Journal of Hydrogen Energy, 41, 45, pp. 20858-20866, (2016), de Crisci, Antonio G., Hydrogen from hydrogen sulfide: towards a more sustainable hydrogen economy, International Journal of Hydrogen Energy, 44, 3, pp. 1299-1327, (2019), Dincer, I., Innovation in hydrogen production, International Journal of Hydrogen Energy, 42, 22, pp. 14843-14864, (2017), Ding, Qi, Efficient Electrocatalytic and Photoelectrochemical Hydrogen Generation Using MoS2 and Related Compounds, Chem, 1, 5, pp. 699-726, (2016), Esmieu, Charlène, From protein engineering to artificial enzymes-biological and biomimetic approaches towards sustainable hydrogen production, Sustainable Energy and Fuels, 2, 4, pp. 724-750, (2018) | |
| dspace.entity.type | Publication | |
| local.indexed.at | Scopus | |
| person.identifier.scopus-author-id | 36026431500 |
