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CuS nanosheet-induced local hot spots on g-C3N4 boost photocatalytic hydrogen evolution
Affiliation:1. International Research Center for Renewable Energy & State Key Laboratory of Multiphase Flow in Power Engineering, Xi''an Jiaotong University, Xi''an, Shaanxi 710049, PR China;2. State Key Laboratory of Physical Chemistry of Solid Surfaces, College of Chemistry and Chemical Engineering, Xiamen University, Xiamen, Fujian 361005, PR China;3. Mechanical Engineering Department, Ferdowsi University of Mashhad, P.O.B. 91775-1111 Mashhad, Iran;4. School of Chemistry and Chemical Engineering, Southeast University, Nanjing, Jiangsu 211189, PR China;5. Suzhou Academy of Xi''an Jiaotong University, Suzhou, Jiangsu 215123, PR China
Abstract:An ideal model composite made of CuS nanosheet (photothermal material) and g-C3N4 was constructed through in-situ assembly procedure, along with integration of dual photochemical effect and photothermal effect. Consequently, optimized CN/CuS composite approaches remarkable photocatalytic performance improved by 44.5 times with regarding to that of pristine CN. This superiority can be assignable to inherent characteristic of CuS as photochemical component, with improved charge separation and enriched surface active-sites. Additionally, the critical contribution of photothermal effect in boosting water photosplitting was also experimentally validated. CuS nanosheet as hot spots enables rapid temperature increment around photocatalysts under visible/near-infrared (NIR) light irradiation. The heat converted from solar is conducive to increase carrier density, accelerate carrier mobility, alleviate onset potential and facilitate surface redox kinetics, so as to promote photocatalytic activity. It is believed that synergetic incorporation of photothermal and photochemical conversion could be expanded to other photocatalytic systems towards effective solar energy conversion.
Keywords:Photothermal effect  Photochemical effect  Photocatalytic hydrogen evolution  CuS nanosheet
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