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Photocatalytic Activities of Copper Doped Cadmium Sulfide Microspheres Prepared by a Facile Ultrasonic Spray-Pyrolysis Method

机译:简便的超声喷雾热解法制备掺杂铜的硫化镉微球的光催化活性

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摘要

Ultrasonic spray pyrolysis is a superior method for preparing and synthesizing spherical particles of metal oxide or sulfide semiconductors. Cadmium sulfide (CdS) photocatalysts with different sizes and doped-CdS with different dopants and doping levels have been synthesized to study their properties of photocatalytic hydrogen production from water. The CdS photocatalysts were characterized with scanning electron microscopy (SEM), X-ray fluorescence-spectrometry (XRF), UV-Vis absorption spectra and X-ray diffraction (XRD) to study their morphological and optical properties. The sizes of the prepared CdS particles were found to be proportional to the concentration of the metal nitrates in the solution. The CdS photocatalyst with smaller size showed a better photocatalytic activity. In addition, Cu doped CdS were also deposited and their photocatalytic activities were also investigated. Decreased bandgaps of CdS synthesized with this method were found and could be due to high density surface defects originated from Cd vacancies. Incorporating the Cu elements increased the bandgap by taking the position of Cd vacancies and reducing the surface defect states. The optimal Cu-doped level was found to be 0.5 mol % toward hydrogen evolution from aqueous media in the presence of sacrificial electron donors (Na2S and Na2SO3) at a pH of 13.2. This study demonstrated that ultrasonic spray pyrolysis is a feasible approach for large-scale photocatalyst synthesis and corresponding doping modification.
机译:超声喷雾热解是制备和合成金属氧化物或硫化物半导体的球形颗粒的绝佳方法。合成了不同尺寸的硫化镉(CdS)光催化剂和不同掺杂剂和掺杂水平的掺杂CdS,以研究其光催化从水中制氢的特性。用扫描电子显微镜(SEM),X射线荧光光谱(XRF),UV-Vis吸收光谱和X射线衍射(XRD)对CdS光催化剂进行了表征,以研究其形态和光学性质。发现所制备的CdS颗粒的尺寸与溶液中金属硝酸盐的浓度成比例。较小尺寸的CdS光催化剂表现出较好的光催化活性。此外,还沉积了铜掺杂的CdS,并研究了它们的光催化活性。发现用此方法合成的CdS的带隙减小,这可能是由于Cd空位引起的高密度表面缺陷所致。掺入Cu元素通过占据Cd空位的位置并减少表面缺陷状态而增加了带隙。发现在pH为13.2的牺牲电子给体(Na 2 S和Na 2 SO 3)的存在下,Cu对Cu从水介质中放出的最佳水平为0.5mol%。这项研究表明,超声喷雾热解是大规模光催化剂合成和相应的掺杂改性的可行方法。

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