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Microstructure-dependent photoelectrochemical and photocatalytic properties of BiOI

机译:BiOI的微观结构依赖性光电化学和光催化性能

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In this study, we demonstrate that the photoelectrochemical and photocatalytic properties of BiOI strongly depend on their microstructures. Compared to BiOI nanoplates with thickness <100 nm, BiOI nanoplate microspheres of 2–5 μm in size exhibited a superior photocatalytic methyl orange degradation performance, but their photocurrent was only 1/11 of that of BiOI nanoplates. The insights into the microstructure-dependent difference are discussed in detail. We think that the higher photocurrent of BiOI nanoplates film lies in more photogenerated electrons because of narrower band gap and less surface defects and better electron transport between nanoplates owing to good connectivity, while the superior photocatalytic degradation activity of BiOI nanoplate microspheres is attributed to their better methyl orange adsorption ability and abundant surface reaction sites as well as more powerful oxidative ability because of larger band gap. This study provides some clues to enhance photoelectrochemical property and photocatalytic activity of semiconductor materials.
机译:在这项研究中,我们证明BiOI的光电化学和光催化性能强烈取决于其微观结构。与厚度小于100 nm的BiOI纳米板相比,尺寸为2–5μm的BiOI纳米板微球具有优异的光催化甲基橙降解性能,但其光电流仅为BiOI纳米板的1/11。详细讨论了微观结构相关差异的见解。我们认为BiOI纳米板薄膜的较高光电流归因于较窄的带隙,较少的表面缺陷以及良好的连通性,这是由于其良好的连通性导致了更多的光生电子,而BiOI纳米板微球的优异光催化降解活性归因于其更好的光催化活性。由于带隙较大,甲基橙的吸附能力和丰富的表面反应位点以及更强的氧化能力。该研究为增强半导体材料的光电化学性能和光催化活性提供了一些线索。

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