Photodeposition of Ag and Cu binary co-catalyst onto TiO2 for improved optical and photocatalytic degradation properties
Author:
Funder
Council of Scientific and Industrial Research, Government of India
Publisher
Elsevier BV
Subject
Mechanics of Materials,General Chemical Engineering
Reference40 articles.
1. Surface modification of TiO2 with Ag nanoparticles and CuO nanoclusters for application in photocatalysis;Mendez-Medrano;J. Phys. Chem. C,2016
2. A new bimetallic plasmonic photocatalyst consisting of gold(core)-copper(shell) nanoparticle and titanium(IV) oxide support;Sato;APL. mater.,2015
3. Effects of monometallic and bimetallic Au–Ag supported on sol–gel TiO2 on photocatalytic degradation of 4-chlorophenol and its intermediates;Wongwisate;Desalination,2011
4. Synthesis and photocatalytic properties of nanocrystalline Au, Pd and Pt photodeposited onto mesoporous RuO2-TiO2 nanocomposites;Ismail;Appl. Catal. A Gen.,2012
5. Comparative density functional theory based study of the reactivity of Cu, Ag and Au nanoparticles and of (111) surfaces toward CO oxidation and NO2 reduction;Pascucci;J. Mol. Model.,2014
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