| Literature DB >> 33579929 |
Zheng Wang1,2, Ying Luo3, Takashi Hisatomi1, Junie Jhon M Vequizo1, Sayaka Suzuki4, Shanshan Chen1, Mamiko Nakabayashi5, Lihua Lin1, Zhenhua Pan1, Nobuko Kariya6, Akira Yamakata7, Naoya Shibata5, Tsuyoshi Takata1, Katsuya Teshima8,9, Kazunari Domen10,11.
Abstract
Oxynitride photocatalysts hold promise for renewable solar hydrogen production via water splitting owing to their intense visible light absorption. Cocatalyst loading is essential for activation of such oxynitride photocatalysts. However, cocatalyst nanoparticles form aggregates and exhibit weak interaction with photocatalysts, which prevents eliciting their intrinsic photocatalytic performance. Here, we demonstrate efficient utilization of photoexcited electrons in a single-crystalline particulate BaTaO2N photocatalyst prepared with the assistance of RbCl flux for H2 evolution reactions via sequential decoration of Pt cocatalyst by impregnation-reduction followed by site-selective photodeposition. The Pt-loaded BaTaO2N photocatalyst evolves H2 over 100 times more efficiently than before, with an apparent quantum yield of 6.8% at the wavelength of 420 nm, from a methanol aqueous solution, and a solar-to-hydrogen energy conversion efficiency of 0.24% in Z-scheme water splitting. Enabling uniform dispersion and intimate contact of cocatalyst nanoparticles on single-crystalline narrow-bandgap particulate photocatalysts is a key to efficient solar-to-chemical energy conversion.Entities:
Year: 2021 PMID: 33579929 PMCID: PMC7881033 DOI: 10.1038/s41467-021-21284-3
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919