Projects per year
Abstract
The pursuit of sustainable and clean energy sources has driven extensive research into the generation and use of novel energy vectors. The photocatalytic overall water splitting (POWS) reaction has been identified as a promising approach for harnessing solar energy to produce hydrogen to be used as a clean energy carrier. Materials chemistry and associated photocatalyst design are key to the further improvement of the efficiency of the POWS reaction through the optimization of charge carrier separation, migration and interfacial reaction kinetics. This review examines the latest progress in POWS, ranging from key catalyst materials to modification strategies and reaction design. Critical analysis focuses on carrier separation and promotion from the perspective of internal and external energy fields, aiming to trace the driving force behind the POWS process and explore the potential for industrial development of this technology. This review concludes by presenting perspectives on the emerging opportunities for this technology, and the challenges to be overcome by future studies.
Original language | English |
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Pages (from-to) | 17292-17327 |
Number of pages | 36 |
Journal | Chemical Science |
Volume | 15 |
Issue number | 42 |
Early online date | 2 Oct 2024 |
DOIs | |
Publication status | Published - 4 Oct 2024 |
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Dive into the research topics of 'Photocatalytic overall water splitting endowed by modulation of internal and external energy fields'. Together they form a unique fingerprint.Projects
- 2 Active
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Transforming clean hydrogen production by photothermal catalysis
Sun, H. (Investigator 01)
ARC Australian Research Council
16/09/24 → 15/09/28
Project: Research
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Three-dimensional solar-energy-driven hydrogen generation from ammonia
Sun, H. (Investigator 01)
ARC Australian Research Council
15/07/24 → 30/06/27
Project: Research