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Photocatalytic Hydrogen Production Using Semiconductor (CdSe)13 Clusters

Authors
Lee, SoyeonLee, YejiAbbas, Hafiz GhulamJi, SeunghyunKim, Seo YoungLee, KyunghoonLi, ShiLee, Eon JiChoi, JongminAhn, HyungjuKim, In YoungIn, Su-IlRinge, StefanJang, Youn JeongYang, Jiwoong
Issue Date
Apr-2025
Publisher
American Chemical Society
Keywords
(CdSe)(13) clusters; photocatalysts; solar hydrogen; doping; suprastructures
Citation
Nano Letters, v.25, no.18, pp 7351 - 7360
Pages
10
Indexed
SCIE
SCOPUS
Journal Title
Nano Letters
Volume
25
Number
18
Start Page
7351
End Page
7360
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/207484
DOI
10.1021/acs.nanolett.5c00529
ISSN
1530-6984
1530-6992
Abstract
Atomically precise (CdSe)(13) clusters, the smallest CdSe semiconductors, represent a unique class of materials at the boundary between nanocrystals and molecules. Despite their promising potential, low structural stability limits their applications as photocatalysts. Herein, we report photocatalytic hydrogen production using atomically precise (CdSe)(13) clusters. To improve stability in aqueous environments, we induce self-assembly into suprastructures, making them suitable for water splitting. Our findings demonstrate that Co2+ doping enhances the electrical properties of these clusters, while bipyridine serves as cocatalyst by interacting with Co2+ dopants and providing catalytic active sites. Through the synergistic effects of Co2+ doping and bipyridine, Co2+-doped (CdSe)(13) suprastructures achieve promising hydrogen evolution activity, surpassing those of undoped suprastructures or nanoclusters. Theoretical calculations confirm that Co2+ doping and bipyridine incorporation lower the hydrogen adsorption energy, consistent with the experimental results. These results highlight the potential of semiconductor (CdSe)(13) clusters as photocatalysts for sustainable hydrogen production.
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