| Literature DB >> 30719734 |
Weixin Zou1,2,3, Lixia Xu1,3, Yu Pu2,3, Haojie Cai1,3, Xiaoqian Wei2,3, Yidan Luo2,3, Lulu Li2,3, Bin Gao4, Haiqin Wan1,3, Lin Dong1,2,3.
Abstract
Bimetallic AgPd nanoparticles have been synthesized before, but the interfacial electronic effects of AgPd on the photocatalytic performance have been investigated less. In this work, the results of hydrogen evolution suggest that the bimetallic AgPd/g-C3 N4 sample has superior activity to Ag/g-C3 N4 and Pd/g-C3 N4 photocatalysts. The UV/Vis diffuse reflectance spectroscopy, X-ray photoelectron spectroscopy, CO adsorption diffuse reflectance FTIR spectroscopy, and FTIR results demonstrate that in the AgPd/g-C3 N4 , the surface electronic structures of Pd and Ag are changed, which is beneficial for faster photogenerated electron transfer and greater H2 O molecule adsorption. In situ ESR spectra suggest that, under visible light irradiation, there is more H2 O dissociation to radical species on the AgPd/g-C3 N4 photocatalyst. Furthermore, DFT calculations confirm the interfacial electronic effects of AgPd/g-C3 N4 , that is, Pdδ- ⋅⋅⋅Agδ+ , and the activation energy of H2 O molecule dissociation on AgPd/g-C3 N4 is the lowest, which is the main contributor to the enhanced photocatalytic H2 evolution.Entities:
Keywords: AgPd/g-C3N4; bimetallic; interfacial electronic effect; nanoparticles; photocatalytic hydrogen evolution; water splitting
Year: 2019 PMID: 30719734 DOI: 10.1002/chem.201806074
Source DB: PubMed Journal: Chemistry ISSN: 0947-6539 Impact factor: 5.236