Journal of Materials Chemistry A · 2013 · 46 citations · 49 references
Materials ScienceZno NanostructuresChemisorption ReactivityH2o Chemisorption ReactivityEngineeringNanomaterialsNanotechnologyOxide ElectronicsOptoelectronic MaterialsZno NanowiresPhotocatalysisGallium OxideOptoelectronic DevicesChemistryFunctional MaterialsPhotoelectrochemistry
ZnO nanostructures with Ga doping prepared by metal–organic chemical vapor deposition developed an interesting nanopagoda shape with exposed {111}, {112}, {201}, and {101} lateral planes instead of {100} and {110} in the usually observed ZnO nanorods or nanowires. The types of exposed planes strongly affect those properties relating to surface reactivity. In this work, we report the opto-electrical properties and chemical reactivity of the Ga-doped ZnO nanopagodas and ZnO nanowires. Ultraviolet responses of photodetectors demonstrated that Ga-doped ZnO nanopagodas not only possessed a faster electron–hole generation and recombination rate but also exhibited higher photocatalytic activities than the ZnO nanowires. The improved performance of Ga-doped ZnO nanopagodas is due to the enhanced O2 and H2O chemisorption reactivity of the {111}, {112}, {201}, and {101} planes relative to the {100} and {110} planes.
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Room-Temperature Ultraviolet Nanowire Nanolasers
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Engineering, Two-dimensional Materials, Low Dimensional Material +20