首页 | 本学科首页   官方微博 | 高级检索  
     


Enhanced photocatalytic hydrogen evolution from reduced graphene oxide-defect rich TiO2-x nanocomposites
Affiliation:1. Department of Applied Sciences (Nanotechnology), Center for Post Graduate Studies, Visvesvaraya Institute of Advance Technology (VIAT), Visvesvaraya Technological University, Muddenahalli Campus, Chikkaballapur District 56 2101, India;2. Department of Physics, Malla Reddy Engineering College(A), Maisammaguda, Hyderabad, Telangana, India;3. Department of Electronics & Communication, Nagarjuna College of Engineering & Technology, Devanahalli, Bengaluru, India;4. Center for Material Science and Nanotechnology, Yogivemana University, Kadapa, Andhra Pradesh, India;5. Nanocatalysis and Solar Fuels Research Laboratory, Department of Materials Science & Nanotechnology, Yogi Vemana University, Kadapa 516005, Andhra Pradesh, India
Abstract:Solar-driven photocatalytic hydrogen generation by splitting water molecules requires an efficient visible light active photocatalyst. This work reports an improved hydrogen evolution activity of visible light active TiO2-x photocatalyst by introducing reduced graphene oxide via an eco-friendly and cost-effective hydrothermal method. This process facilitates graphene oxide reduction and incorporates intrinsic defects in TiO2 lattice at a one-pot reaction process. The characteristic studies reveal that RGO/TiO2-x nanocomposites were sufficiently durable and efficient for photocatalytic hydrogen generation under the visible light spectrum. The altered band gap of TiO2-x rationally promotes the visible light absorption, and the RGO sheets present in the composites suppresses the electron-hole recombination, which accelerates the charge transfer. Hence, the noble metal-free RGO/TiO2-x photocatalyst exhibited hydrogen production with a rate of 13.6 mmol h?1g?1cat. under solar illumination. The appreciable photocatalytic hydrogen generation activity of 947.2 μmol h?1g?1cat with 117 μAcm?2 photocurrent density was observed under visible light (>450 nm).
Keywords:Photocatalyst  Photo anode  Solar hydrogen generation
本文献已被 ScienceDirect 等数据库收录!
设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号