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首页> 外文期刊>Solar Energy Materials and Solar Cells: An International Journal Devoted to Photovoltaic, Photothermal, and Photochemical Solar Energy Conversion >Fabrication of Bi2WO6 photoelectrodes with enhanced photoelectrochemical and photocatalytic performance
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Fabrication of Bi2WO6 photoelectrodes with enhanced photoelectrochemical and photocatalytic performance

机译:Bi2WO6光电系的制造,具有增强的光电化学和光催化性能

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摘要

Visible light active semiconductor Bi2WO6 photoelectrodes with desired physical and chemical properties are sought for solar energy conversion and photocatalytic applications. The porous nanostructured Bi2WO6 photoelectrodes are prepared by Spray Pyrolysis (SP). A detail study has been conducted to correlate the annealing temperature, morphology and crystallographic orientation with the photoelectrochemical (PEC), electrochemical and photocatalytic properties. The photoelectrodes possess an optical bandgap of 2.82 eV and exhibit anodic photocurrent. The current-voltage characterization of Bi2WO6 photoelectrodes reveals that the photocurrent density and photocurrent onset potential is strongly dependent on the deposition parameters. The PEC study shows that the photoelectrode annealed at 525 degrees C has photocurrent density of 42 mu Acm(-2 )at 0.23 V (vs Ag/AgCl/3M KCl) under AM1.5 illumination and exhibit superior photocatalytic activity for Rhodamine B (RhB) degradation. The electrochemical study shows that the photoelectrode has flatband potential of 2.85 V which is in good agreement with photocurrent onset potential. This finding will have a significant influence on further exploitation of Bi2WO6 as a potential semiconductor material in solar energy conversion and photocatalytic applications.
机译:可见光有源半导体Bi2WO6具有所需物理和化学性质的光电仪寻求太阳能转换和光催化应用。通过喷雾热解(SP)制备多孔纳米结构BI2WO6光电系。已经进行了详细研究以将退火温度,形态和结晶取向与光电化学(PEC),电化学和光催化性质相关联。光电电极具有2.82eV的光学带隙并显示出阳极光电流。 Bi2WO6光电区的电流 - 电压表征显示光电流密度和光电流发作电位强烈取决于沉积参数。 PEC的研究表明,在525℃下退火的光电极在AM1.5照射下的0.23V(VS Ag / AgCl / 3M KCl)下具有42μAcm(-2)的光电流密度,并表现出罗丹明B的优异的光催化活性(RHB ) 降解。电化学研究表明,光电极具有2.85V的扁平带电位,与光电流发作潜力有关。这一发现将对Bi2WO6进一步开发为太阳能转换和光催化应用中的潜在半导体材料的进一步开发。

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