Photocatalytic Degradation of Synthetic Sulfur Pollutants in Petroleum Fractions under Different pH and Photocatalyst

M. Hamdan, N. Hairom, Nurhafisza Zaiton, Z. Harun, S. Fhong, S. Hubadillah, M. R. Jamalludin, N. Jusoh, A. A. Jalil
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引用次数: 1

Abstract

Thiophene is one of the sulfur compounds in the petroleum fraction that can be harmful to living things and lead to a critical effect on the ecosystem. Photocatalytic degradation is one of the promising methods in treating wastewater as it can mineralization of pollutants into carbon dioxide and water. Other than that, this method is non-toxic and relatively low cost. The production of hydroxyl radicals playing a vital role in the degradation of organic pollutants. It has been claimed that the usage of zinc oxide (ZnO) nanoparticles could give an excellent degradation process as this photocatalyst have high photosensitivity, low cost and chemically stable. However, the preparation method of ZnO nanoparticles will affect the agglomeration, particle size, shape and morphology of particles and lead to influence the photocatalytic activity in degrading thiophene. Therefore, this study focused on the effectiveness of ZnO nanoparticles in the presence of fibrous nanosilica (KCC-1) and polyethylene glycol (PEG) as the capping agent to degrade synthetic thiophene. ZnO/KCC-1 had been synthesized via the precipitation method and characterized by using Fourier Transform Infrared (FTIR). The chemical bond and nature of the photocatalyst from the FTIR results proved that the synthesis process to produce the ZnO/KCC-1 was succeed. The large surface area of KCC-1 increases the effectiveness of ZnO which is supported by the experimental data. Accordingly, the optimum condition for photocatalytic degradation of thiophene is under pH 7 by using ZnO/KCC-1 as photocatalyst. Hence, it is believed that this research could be implemented to remove the thiophene in petroleum fraction from the actual industrial effluents and this can preserve nature in the future.
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不同pH和不同光催化剂下光催化降解石油馏分中合成硫污染物的研究
噻吩是石油馏分中的一种含硫化合物,对生物有害,对生态系统造成严重影响。光催化降解可以将污染物矿化成二氧化碳和水,是一种很有前途的污水处理方法。除此之外,这种方法无毒,成本也相对较低。羟基自由基的产生在有机污染物的降解中起着至关重要的作用。研究表明,氧化锌纳米颗粒具有光敏性高、成本低、化学性质稳定等优点,是一种良好的光催化剂。然而,ZnO纳米颗粒的制备方法会影响颗粒的团聚、粒径、形状和形貌,从而影响降解噻吩的光催化活性。因此,本研究的重点是ZnO纳米颗粒在纤维纳米二氧化硅(KCC-1)和聚乙二醇(PEG)作为封盖剂存在下对合成噻吩的降解效果。采用沉淀法合成了ZnO/KCC-1,并用傅里叶变换红外(FTIR)对其进行了表征。FTIR结果表明,光催化剂的化学键和性质证明了ZnO/KCC-1的合成工艺是成功的。KCC-1的大表面积提高了ZnO的效能,实验数据也证实了这一点。因此,以ZnO/KCC-1为光催化剂,光催化降解噻吩的最佳条件是pH为7。因此,相信本研究可用于从实际工业废水中去除石油馏分中的噻吩,从而在未来保护自然。
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