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Nanostructured semiconducting materials for efficient hydrogen generation
Authors:" target="_blank">Nagappagari Lakshmana Reddy  Vempuluru Navakoteswara Rao  Murkinati Mamatha Kumari  Raghava Reddy Kakarla  Parnapalle Ravi  Marappan Sathish  Mani Karthik  Shankar Muthukonda Venkatakrishnan  Inamuddin
Institution:1.Nano Catalysis and Solar Fuels Research Laboratory, Department of Materials Science& Nanotechnology,Yogi Vemana University,Kadapa,India;2.School of Chemical and Biomolecular Engineering,The University of Sydney,Sydney,Australia;3.Functional Materials Division,Central Electrochemical Research Institute (CSIR-CECRI),Karaikudi,India;4.Centre for Nanomaterials, International Advanced Research Centre for Powder Metallurgy and New Materials (ARCI),Balapur,India;5.Chemistry Department, Faculty of Science,King Abdulaziz University,Jeddah,Saudi Arabia;6.Advanced Functional Materials Laboratory, Department of Applied Chemistry, Faculty of Engineering and Technology,Aligarh Muslim University,Aligarh,India
Abstract:Massive production of hydrogen by water decomposition triggered by a solar light active photocatalyst is a major objective in chemistry and a promising avenue to overcome the global energy crisis. The development of efficient, stable, economically viable and eco-friendly photocatalysts for hydrogen production is a challenging task. This article reviews the use of nanocomposite in three combinations: metal oxide–metal oxide semiconductor, metal–metal oxide semiconductor and metal chalcogenide–metal oxide core–shell nanostructures. These core–shell structures occur in two forms: a simple form where the photocatalyst is either in the core or the shell or in a more complex system where the core–shell structure comprises a co-catalyst deposited on a semiconducting material. We discuss the design, synthesis and development of semiconductor-based nanocomposite photocatalysts for hydrogen production. The major points are the role of catalytic active sites, the chemical nature of sacrificial agents, the effect of light sources, the variable light intensity and the energy efficiency calculation. For TiO2-based nanocomposites, the metal oxide or metal co-catalyst loading of 1.0–3.0 wt% was optimal. TiO2 nanotube–CuO hybrid nanocomposites produce 1,14,000 µmol h?1 \({\text{g}}^{ - 1}_{\text{cat}}\), whereas TiO2/Au nanocomposites display 1,60,000 µmol h?1 \({\text{g}}^{ - 1}_{\text{cat}}\). For core–shell catalysts, a shell thickness of 2–20 nm was found for the best activity, and its performance is as follows: (a) CdS–NiO system produces around 19,949 µmol h?1 \({\text{g}}^{ - 1}_{\text{cat}}\) and (b) CuO–Cr2O3 as co-catalyst immobilized on TiO2 system produces around 82,390 µmol h?1 \({\text{g}}^{ - 1}_{\text{cat}}\).
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