logo

H2 Production by Water Splitting in Acidic Media

PDF Publication Title:

H2 Production by Water Splitting in Acidic Media ( h2-production-by-water-splitting-acidic-media )

Previous Page View | Next Page View | Return to Search List

Text from PDF Page: 014

Materials 2023, 16, 474 14 of 17 15. Niaz, A.K.; Akhtar, A.; Park, J.-Y.; Lim, H.-T. Effects of the operation mode on the degradation behavior of anion exchange membrane water electrolyzers. J. Power Sources 2021, 481, 229093. [CrossRef] 16. Niaz, A.K.; Lim, H.-T. Stability Tests on Anion Exchange Membrane Water Electrolyzer under On-Off Cycling with Continuous Solution Feeding. J. Electrochem. Sci. Technol. 2022, 13, 369–376. [CrossRef] 17. Wang, L.; Chen, M.; Küngas, R.; Lin, T.-E.; Diethelm, S.; Maréchal, F.; Van Herle, J. Power-to-fuels via solid-oxide electrolyzer: Operating window and techno-economics. Renew. Sustain. Energy Rev. 2019, 110, 174–187. [CrossRef] 18. Kamlungsua, K.; Su, P.-C.; Chan, S.H. Hydrogen Generation Using Solid Oxide Electrolysis Cells. Fuel Cells 2020, 20, 644–649. [CrossRef] 19. Li, Z.; Zhang, H.; Xu, H.; Xuan, J. Advancing the multiscale understanding on solid oxide electrolysis cells via modelling approaches: A review. Renew. Sustain. Energy Rev. 2021, 141, 110863. [CrossRef] 20. Noussan, M.; Raimondi, P.P.; Scita, R.; Hafner, M. The role of green and blue hydrogen in the energy transition—A technological and geopolitical perspective. Sustainability 2021, 13, 298. [CrossRef] 21. Osman, A.I.; Mehta, N.; Elgarahy, A.M.; Hefny, M.; Al-Hinai, A.; Al-Muhtaseb, A.H.; Rooney, D.W. Hydrogen production, storage, utilisation and environmental impacts: A review. Environ. Chem. Lett. 2022, 20, 153–188. [CrossRef] 22. Oliveira, A.M.; Beswick, R.R.; Yan, Y. A green hydrogen economy for a renewable energy society. Curr. Opin. Chem. Eng. 2021, 33, 100701. [CrossRef] 23. Bareiß, K.; de la Rua, C.; Möckl, M.; Hamacher, T. Life cycle assessment of hydrogen from proton exchange membrane water electrolysis in future energy systems. Appl. Energy 2019, 237, 862–872. [CrossRef] 24. Jurasz, J.; Canales, F.A.; Kies, A.; Guezgouz, M.; Beluco, A. A review on the complementarity of renewable energy sources: Concept, metrics, application and future research directions. Sol. Energy 2020, 195, 703–724. [CrossRef] 25. Egeland-Eriksen, T.; Hajizadeh, A.; Sartori, S. Hydrogen-based systems for integration of renewable energy in power systems: Achievements and perspectives. Int. J. Hydrogen Energy 2021, 46, 31963–31983. [CrossRef] 26. David, M.; Ocampo-Martínez, C.; Sánchez-Peña, R. Advances in alkaline water electrolyzers: A review. J. Energy Storage 2019, 23, 392–403. [CrossRef] 27. Gan, L.; Jiang, P.; Lev, B.; Zhou, X. Balancing of supply and demand of renewable energy power system: A review and bibliometric analysis. Sustain. Futures 2020, 2, 100013. [CrossRef] 28. Hiesl, A.; Ajanovic, A.; Haas, R. On current and future economics of electricity storage. Greenh. Gases Sci. Technol. 2020, 10, 1176–1192. [CrossRef] 29. Mitali, J.; Dhinakaran, S.; Mohamad, A.A. Energy storage systems: A review. Energy Storage Sav. 2022, 1, 166. [CrossRef] 30. Lucas, T.R.; Ferreira, A.F.; Santos Pereira, R.B.; Alves, M. Hydrogen production from the WindFloat Atlantic offshore wind farm: A techno-economic analysis. Appl. Energy 2022, 310, 118481. [CrossRef] 31. Calado, G.; Castro, R. Hydrogen Production from Offshore Wind Parks: Current Situation and Future Perspectives. Appl. Sci. 2021, 11, 5561. [CrossRef] 32. Mohammadi, A.; Mehrpooya, M. A comprehensive review on coupling different types of electrolyzer to renewable energy sources. Energy 2018, 158, 632–655. [CrossRef] 33. Yue, M.; Lambert, H.; Pahon, E.; Roche, R.; Jemei, S.; Hissel, D. Hydrogen energy systems: A critical review of technologies, applications, trends and challenges. Renew. Sustain. Energy Rev. 2021, 146, 111180. [CrossRef] 34. Ursúa, A.; Barrios, E.L.; Pascual, J.; San Martín, I.; Sanchis, P. Integration of commercial alkaline water electrolysers with renewable energies: Limitations and improvements. Int. J. Hydrogen Energy 2016, 41, 12852–12861. [CrossRef] 35. Ursúa, A.; San Martín, I.; Barrios, E.L.; Sanchis, P. Stand-alone operation of an alkaline water electrolyser fed by wind and photovoltaic systems. Int. J. Hydrogen Energy 2013, 38, 14952–14967. [CrossRef] 36. Wang, S.; Lu, A.; Zhong, C.-J. Hydrogen production from water electrolysis: Role of catalysts. Nano Converg. 2021, 8, 4. [CrossRef] 37. Sapountzi, F.M.; Gracia, J.M.; Weststrate, C.J.; Kees, J.; Fredriksson, H.O.A.; Niemantsverdriet, J.W. Electrocatalysts for the generation of hydrogen, oxygen and synthesis gas. Prog. Energy Combust. Sci. 2017, 58, 1–35. [CrossRef] 38. Ferriday, T.B.; Middleton, P.H.; Kolhe, M.L. Review of the Hydrogen Evolution Reaction—A Basic Approach. Energies 2021, 14, 8535. [CrossRef] 39. Bhalothia, D.; Krishnia, L.; Yang, S.-S.; Yan, C.; Hsiung, W.-H.; Wang, K.-W.; Chen, T.-Y. Recent Advancements and Future Prospects of Noble Metal-Based Heterogeneous Nanocatalysts for Oxygen Reduction and Hydrogen Evolution Reactions. Appl. Sci. 2020, 10, 7708. [CrossRef] 40. Wang, Y.; Zhang, L.; Hu, C.; Yu, S.; Yang, P.; Cheng, D.; Zhao, Z.-J.; Gong, J. Fabrication of bilayer Pd-Pt nanocages with sub-nanometer thin shells for enhanced hydrogen evolution reaction. Nano Res. 2019, 12, 2268–2274. [CrossRef] 41. Tominaka, S.; Momma, T.; Osaka, T. Electrodeposited Pd-Co catalyst for direct methanol fuel cell electrodes: Preparation and characterization. Electrochim. Acta 2008, 53, 4679–4686. [CrossRef] 42. Xu, C.; Liu, Y.; Zhang, H.; Geng, H. A Nanoporous PdCo Alloy as a Highly Active Electrocatalyst for the Oxygen-Reduction Reaction and Formic Acid Electrooxidation. Chem. Asian J. 2013, 8, 2721–2728. [CrossRef] [PubMed] 43. Sarkar, S.; Peter, S.C. An overview on Pd-based electrocatalysts for the hydrogen evolution reaction. Inorg. Chem. Front. 2018, 5, 2060–2080. [CrossRef]

PDF Image | H2 Production by Water Splitting in Acidic Media

h2-production-by-water-splitting-acidic-media-014

PDF Search Title:

H2 Production by Water Splitting in Acidic Media

Original File Name Searched:

materials-16-00474.pdf

DIY PDF Search: Google It | Yahoo | Bing

Salgenx Redox Flow Battery Technology: Salt water flow battery technology with low cost and great energy density that can be used for power storage and thermal storage. Let us de-risk your production using our license. Our aqueous flow battery is less cost than Tesla Megapack and available faster. Redox flow battery. No membrane needed like with Vanadium, or Bromine. Salgenx flow battery

CONTACT TEL: 608-238-6001 Email: greg@salgenx.com | RSS | AMP