| Literature DB >> 27555123 |
Jiayuan Shi1,2, Yasutaka Kuwahara1,3, Meicheng Wen1, Miriam Navlani-García1, Kohsuke Mori1,3, Taicheng An2,4, Hiromi Yamashita5,6.
Abstract
A straightforward aqueous synthesis of MoO3-x nanoparticles at room temperature was developed by using (NH4 )6 Mo7 O24 ⋅4 H2 O and MoCl5 as precursors in the absence of reductants, inert gas, and organic solvents. SEM and TEM images indicate the as-prepared products are nanoparticles with diameters of 90-180 nm. The diffuse reflectance UV-visible-near-IR spectra of the samples indicate localized surface plasmon resonance (LSPR) properties generated by the introduction of oxygen vacancies. Owing to its strong plasmonic absorption in the visible-light and near-infrared region, such nanostructures exhibit an enhancement of activity toward visible-light catalytic hydrogen generation. MoO3-x nanoparticles synthesized with a molar ratio of Mo(VI) /Mo(V) 1:1 show the highest yield of H2 evolution. The cycling catalytic performance has been investigated to indicate the structural and chemical stability of the as-prepared plasmonic MoO3-x nanoparticles, which reveals its potential application in visible-light catalytic hydrogen production.Entities:
Keywords: green chemistry; molybdenum oxide; nanoparticles; photochemistry; surface plasmon resonance
Year: 2016 PMID: 27555123 DOI: 10.1002/asia.201600771
Source DB: PubMed Journal: Chem Asian J ISSN: 1861-471X