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Sunlight-Driven Combustion Synthesis of Defective Metal Oxide Nanostructures with Enhanced Photocatalytic Activity. | LitMetric

AI Article Synopsis

  • * ZnO nanostructures produced using this technique show enhanced photocatalytic activity for breaking down methyl orange compared to those made through traditional methods, due to factors like smaller particle size and surface defects.
  • * The method is also effective in creating porous FeO nanostructures and few-layer BiO nanosheets, with BiO/ZnO heterostructures demonstrating superior photocatalytic performance compared to those synthesized by conventional approaches.

Article Abstract

Synthesis of metal oxide nanostructures through combustion routes is a promising technique owing to its simplicity, rapidity, scalability, and cost-effectiveness. Herein, a sunlight-driven combustion approach is developed to synthesize pristine metal oxides and their heterostructures. Sunlight, a sustainable energy source, is used not only to initiate the combustion reaction but also to create oxygen vacancies on the metal oxide surface. ZnO nanostructures are successfully synthesized using this novel approach, and the products exhibit higher photocatalytic activity in the decomposition of methyl orange (MO) than ZnO nanostructures synthesized by the conventional methods. The higher photocatalytic activity is due to the narrower band gap, higher porosity, smaller and more uniform particle size, surface oxygen vacancies, as well as the enhanced exciton dissociation efficiency induced by the sunlight. Porous FeO nanostructures are also prepared using this environmentally benign method. Surprisingly, few-layer BiO nanosheets are successfully obtained using the sunlight-driven combustion approach. Moreover, the approach developed here is used to synthesize BiO/ZnO heterostructure exhibiting a structure of few-layer BiO nanosheets decorated with ZnO nanoparticles. BiO nanosheets and BiO/ZnO heterostructures synthesized by sunlight-driven combustion route exhibit higher photocatalytic activity than their counterparts synthesized by the conventional solution combustion method. This work illuminates a potential cost-effective method to synthesize defective metal oxide nanostructures at scale.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6906766PMC
http://dx.doi.org/10.1021/acsomega.9b02564DOI Listing

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