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硒化壳聚糖作为高性能纳米光催化剂加速污染物降解。

Selenide-chitosan as High-performance Nanophotocatalyst for Accelerated Degradation of Pollutants.

机构信息

Key Laboratory for Palygorskite Science and Applied Technology of Jiangsu Province National & Local Joint Engineering Research Center for Deep Utilization Technology of Rock-salt Resource Faculty of Chemical Engineering, Huaiyin Institute of Technology, Huaian, 223003, China.

Institute of Chemical Sciences, University of Peshawar, Khyber Pakhtunkhwa, 25120, Pakistan.

出版信息

Chem Asian J. 2020 Sep 1;15(17):2660-2673. doi: 10.1002/asia.202000597. Epub 2020 Aug 5.

Abstract

Water pollution is one of the major global challenges today. Water bodies are contaminated by the heavy release of waste effluents of textile industries, which includes intensively colored dye pollutants. Herein, a ternary nanocomposite of bismuth copper selenide with small particle size and ternary metal selenide (TMS)-chitosan microspheres (TMS-CM) of the spherical porous surface were successfully synthesized. SEM, XRD, EDX, FTIR, and UV/Vis spectrophotometry analysis revealed the structural and morphological characteristics of the newly synthesized nanocomposites. SEM imaging showed the average diameter of TMS nanoparticle to be 33 nm. The crystal size was calculated as 6.33 nm and crystalline structure as orthorhombic using XRD findings. EDX confirmed the presence of Bi, Cu, and Se in the ternary nanocomposite. The bandgap of 1.8 eV was calculated from Tauc's plot for the TMS nanocomposite. SEM confirmed the successful synthesis of spherical TMS-CM microspheres of porous surface morphology with an average size of 885.6 μm. The presence of chitosan microspheres in the synthesis of TMS nanocomposite was identified by FTIR spectral analysis. Furthermore, highly efficient photocatalytic degradation (up to 95.4%) of ARS was achieved within 180 min at pH 4.0 using 0.5 g of TMS-CM in sunlight. The first-order kinetic model fitted well to the photocatalytic decontamination of ARS using TMS-CM with a rate constant of 6.1x10  min . The TMS-CM gave attractive results and high efficiency in photocatalytic degradation of ARS dye after reusing and regeneration of up to seven successive cycles. The newly synthesized nanophotocatalyst could be efficiently used for the decontamination of dye polluted water from textile industries.

摘要

水污染是当今全球面临的主要挑战之一。水体受到纺织工业废水大量排放的污染,其中包括强烈染色的染料污染物。在此,成功合成了具有小粒径的碲化铋铜三元纳米复合材料和具有球形多孔表面的三元金属硒化物(TMS)-壳聚糖微球(TMS-CM)。SEM、XRD、EDX、FTIR 和 UV/Vis 分光光度法分析揭示了新合成纳米复合材料的结构和形态特征。SEM 成像显示 TMS 纳米颗粒的平均直径为 33nm。通过 XRD 结果计算出晶体尺寸为 6.33nm,晶体结构为正交晶系。EDX 证实三元纳米复合材料中存在 Bi、Cu 和 Se。Tauc 图计算出 TMS 纳米复合材料的带隙为 1.8eV。SEM 证实成功合成了具有多孔表面形态的球形 TMS-CM 微球,平均粒径为 885.6μm。通过 FTIR 光谱分析确定了在 TMS 纳米复合材料的合成中存在壳聚糖微球。此外,在 pH 4.0 下,使用 0.5g 的 TMS-CM 在阳光下,可实现高达 95.4%的对 ARS 的高效光催化降解。使用 TMS-CM 对 ARS 的光催化去除符合一级动力学模型,速率常数为 6.1x10  min 。TMS-CM 在重复使用和再生多达七个连续循环后,在光催化降解 ARS 染料方面表现出有吸引力的结果和高效率。新合成的纳米光催化剂可有效地用于从纺织工业中去除受污染的染料水。

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