Back to Search Start Over

Monodisperse silver nanocubes composite Ag@C/SrTiO3 photocatalytic decomposition of water for hydrogen reduction.

Authors :
Li, Xinru
Bai, Yaoning
Yan, Yuwei
Ouyang, Taoyuan
Jiang, Xiaodi
Wang, Xu
Cai, Xiaoming
Cai, Jinming
Tan, Honglin
Source :
Materials Chemistry & Physics. Oct2024, Vol. 325, pN.PAG-N.PAG. 1p.
Publication Year :
2024

Abstract

Metal-induced photocatalysis has been a relatively effective strategy for the efficient use of solar energy. In this paper, highly efficient and stable Ag@C/SrTiO 3 photocatalysts were prepared by compounding silver nanocubes wrapped with few layers graphite with strontium titanate materials. We obtained silver nanocubes with a uniformly dispersed size of about 35 nm by varying the surface energy of silver and inducing the preferential binding of PVP on the (100) crystal plane with the help of selective adsorption of chloride ions on the different crystal planes of silver. As obtained under the characterisation of UV–visible absorption spectra, the material has a broad visible light absorption (450–900 nm). The Ag@C/SrTiO 3 has a hydrogen reduction rate of up to 457.5 μmol g−1·h−1 under simulated sunlight, which is ∼200 % higher than the SrTiO 3 and ∼900 % higher than the sliver. Moreover, the catalyst was stable, still producing 93.5 % hydrogen after three cycles of testing, and the photocatalyst structure did not change as known from the XRD data of the material before and after testing. The present work demonstrates the feasibility of rational design of efficient and stable silver-based photocatalysts. [Display omitted] • In this paper, we obtain uniformly dispersed silver nanocubes (35nm) with a broad visible light absorption range (450-900 nm). • The Ag@C/SrTiO3 has a hydrogen reduction rate of up to 457.5 μmol g−1·h−1 under simulated sunlight, which is ∼200 % higher than the SrTiO3 and ∼900 % higher than the sliver. • The catalyst was stable, still producing 93.5 % hydrogen after three cycles of testing, and the photocatalyst structure did not change before and after testing. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
02540584
Volume :
325
Database :
Academic Search Index
Journal :
Materials Chemistry & Physics
Publication Type :
Academic Journal
Accession number :
178998126
Full Text :
https://doi.org/10.1016/j.matchemphys.2024.129746