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Multidisciplinary methods (co-precipitation,ultrasonic, microwave,reflux and hydrothermal) for synthesis and characterization of CaMn3O6 nanostructures and its photocatalytic water splitting performance
Affiliation:1. Institute of Nano Science and Nano Technology, University of Kashan, Kashan, P. O. Box. 87317–51167, Islamic Republic of Iran;2. Department for Management of Science and Technology Development, Ton Duc Thang University, Ho Chi Minh City, Viet Nam;3. Faculty of Civil Engineering, Ton Duc Thang University, Ho Chi Minh City, Viet Nam;1. Shenzhen Research Institute, Xi''an Jiaotong University, Shenzhen, Guangdong, 518057, China;2. Key Laboratory of Thermo-Fluid Science and Engineering of MOE, School of Energy and Power Engineering, Xi''an Jiaotong University, Xi''an, Shaanxi 710049, China;1. School of Physics, Dalian Maritime University, Dalian, 116026, China;2. Information Science and Technology College, Dalian Maritime University, Dalian, 116026, China;3. Shenyang National Laboratory of Materials Science, Institute of Metal Research, Chinese Academy of Sciences, Shenyang, 110016, China;4. Key Laboratory of Materials Modification by Laser, Ion and Electron Beams (Dalian University of Technology), Ministry of Education, Dalian, 116024, China;1. Department of Chemical Engineering, University of Bonab, P.O. Box. 5551761167, Bonab, Iran;2. Institute of Nano Science and Nano Technology, University of Kashan, Kashan, P. O. Box. 87317-51167, Iran;1. Institute of High Temperature Electrochemistry of the Ural Branch of the RAS, 20 Akademicheskaya, Yekaterinburg, 620137, Russia;2. Ural Federal University Named After the First President of Russia B. N. Yeltsin, 19 Mira, Yekaterinburg, 620002, Russia;3. Institute of Metallurgy of the Ural Branch of the RAS, 101 Amundsena, Yekaterinburg, 620016, Russia
Abstract:Production of hydrogen and oxygen from water splitting reaction under visible light is a simple method for conversion of solar-to-hydrogen energy and it is a hopeful clean and renewable method for H2 fuel generation. However, there is still a lack of potential materials with significant activity under visible light. Because of safety, chemical inertness, low cost, stability and other characteristics, transition metal oxide semiconductors have been widely applied as photocatalysts for hydrogen generation. Albeit, wide usage of semiconductor photocatalysts were prevented by its inability to exploit solar energy of visible region. Here we show synthesis of a nano-sized mixed metal oxide (MMO) Ca3MnO6 through wet-chemistry methods such as co-precipitation, ultrasonic, microwave, reflux, and hydrothermal methods. The nano-sized Ca3MnO6 has initially selected based on morphology and respective particle diameters. The selected sample shows a well-defined single crystal, free from any impurities, complete structural formation, and a band gap energy (Eg) of around 5.3 eV. The best product synthesized in ultrasonic method which shows the best morphology, purity and the highest efficiency for splitting of water to hydrogen and oxygen. Irrespective of preparation methods and morphologies, all samples split water into hydrogen and oxygen, as confirmed from their respective photocatalytic analysis. When the selected sample combined with (NH4)2Ce(NO3)6, the single-crystal Ca3MnO6 nanoparticles split water into hydrogen and oxygen more efficiently under visible light. Our findings demonstrate the importance of nanostructured Ca3MnO6 single-crystal photocatalysts in solar water splitting.
Keywords:Nanostructures  Ceramic  Ultrasonic  Water splitting
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