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Title
Recent advances in photoelectrochemical hydrogen production using I-III-VI quantum dots
Issued Date
2024-05
Citation
Lee, Hyo Cheol. (2024-05). Recent advances in photoelectrochemical hydrogen production using I-III-VI quantum dots. Nanoscale, 16(19), 9295–9310. doi: 10.1039/d4nr01040j
Type
Article
Keywords
WATERPHOTOANODESHEAVY METAL-FREEHIGHLY EFFICIENTSOLAR-CELLSNANOCRYSTALSPERFORMANCE
ISSN
2040-3364
Abstract
Photoelectrochemical (PEC) water splitting, recognized for its potential in producing solar hydrogen through clean and sustainable methods, has gained considerable interest, particularly with the utilization of semiconductor nanocrystal quantum dots (QDs). This minireview focuses on recent advances in PEC hydrogen production using I-III-VI semiconductor QDs. The outstanding optical and electrical properties of I-III-VI QDs, which can be readily tuned by modifying their size, composition, and shape, along with an inherent non-toxic nature, make them highly promising for PEC applications. The performance of PEC devices using these QDs can be enhanced by various strategies, including ligand modification, defect engineering, doping, alloying, and core/shell heterostructure engineering. These approaches have notably improved the photocurrent densities for hydrogen production, achieving levels comparable to those of conventional heavy-metal-based counterparts. Finally, this review concludes by addressing the present challenges and future prospects of these QDs, underlining crucial steps for their practical applications in solar hydrogen production. This minireview covers recent advances in photoelectrochemical hydrogen production using I-III-VI QDs, detailing the material design strategies.
URI
http://hdl.handle.net/20.500.11750/56731
DOI
10.1039/d4nr01040j
Publisher
Royal Society of Chemistry
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In, Su-Il인수일

Department of Energy Science and Engineering

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