可重复使用Ag2S/ZnS/Fe3O4磁性纳米复合材料在可见光下降解甲基橙的协同光催化性能

IF 3.9 3区 化学 Q2 POLYMER SCIENCE
M. Beigmoradi, P. Iranmanesh, S. Saeednia
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引用次数: 0

摘要

本研究采用易溶共沉淀法成功合成了新型三元Ag2S/ZnS/Fe3O4磁性纳米复合材料。利用不同的表征设备研究了Ag2S/ZnS和Ag2S/ZnS/Fe3O4纳米复合材料的结构、形貌和光学性能,并将其作为甲基橙降解的光催化剂。x射线衍射分析表明,在室温下,ZnS和Fe3O4为立方晶体结构,而Ag2S为单斜晶结构。TEM图像显示,Ag2S/ZnS和Ag2S/ZnS/Fe3O4纳米复合材料的平均粒径分别约为9 nm和26 nm。此外,Ag2S/ZnS/Fe3O4纳米复合材料的光致发光峰值强度低于Ag2S/ZnS纳米复合材料,这表明在三元纳米复合材料中,电子-空穴复合减少,光生载流子跃迁增强。为了优化Ag2S/ZnS/Fe3O4磁性纳米复合材料降解甲基橙的光催化性能,研究了pH、甲基橙浓度、光催化剂用量和辐射类型等不同的有效参数。在优化条件下,Ag2S/ZnS/Fe3O4纳米复合材料的光催化效率高于Ag2S/ZnS。其中,Ag2S/ZnS/Fe3O4纳米复合材料在可见光和紫外光下的光催化降解效率分别约为92%和99%。这种优异的降解性能可归因于三元纳米复合材料的小带隙能量和低电子-空穴复合率。此外,我们发现Ag2S/ZnS/Fe3O4光催化剂在催化反应后可以很容易地用简单的磁体分离。它在回收后也表现出高度稳定的性能,表明了先进的可重用性和稳定性。因此,具有生物相容性和可重复利用性的Ag2S/ZnS/Fe3O4磁性纳米复合材料可以被认为是一种在可见光辐射下降解甲基橙的高效光催化剂。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Synergetic Photocatalytic Performance of Reusable Ag2S/ZnS/Fe3O4 Magnetic Nanocomposite for Impressive Degradation of Methyl Orange over Visible Light

In this research, a novel ternary Ag2S/ZnS/Fe3O4 magnetic nanocomposite was successfully synthesized using the facile co-precipitation method. Different characterization equipments were used to study the structure, morphology, and optical properties of the Ag2S/ZnS and Ag2S/ZnS/Fe3O4 nanocomposites, which will be used as a photocatalyst for methyl orange degradation. X-ray diffraction analyses showed that ZnS and Fe3O4 have a cubic crystal structure, while Ag2S has a monoclinic structure at room temperature. TEM images revealed that the average particle size of the Ag2S/ZnS and Ag2S/ZnS/Fe3O4 nanocomposites is approximately 9 nm and 26 nm, respectively. Furthermore, the photoluminescence peak intensity of the Ag2S/ZnS/Fe3O4 nanocomposite was lower than that of the Ag2S/ZnS nanocomposite, indicating a reduction in electron-hole recombination and an enhancement in photogenerated charge carrier transitions in the ternary nanocomposite. To optimize the photocatalytic performance of the Ag2S/ZnS/Fe3O4 magnetic nanocomposite for methyl orange degradation, different effective parameters such as pH, methyl orange concentration, photocatalyst dosage, and radiation type was varied. Under the optimized conditions, the Ag2S/ZnS/Fe3O4 nanocomposite exhibited higher photocatalytic efficiency than Ag2S/ZnS. Specifically, the photocatalytic degradation efficiency of the Ag2S/ZnS/Fe3O4 nanocomposite was approximately 92% and 99% under visible and ultraviolet light radiation, respectively. This excellent degradation performance can be attributed to the small band gap energy and low rate of electron-hole recombination in the ternary nanocomposite. Furthermore, we found that the Ag2S/ZnS/Fe3O4 photocatalyst could be easily separated with a simple magnet after the catalytic reaction. It also demonstrated a highly stable performance after recycling, indicating advanced reusability and stability. Therefore, the Ag2S/ZnS/Fe3O4 magnetic nanocomposite, which is both biocompatible and reusable, can be considered an effective and high-efficiency photocatalyst for methyl orange degradation under visible light radiation.

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来源期刊
CiteScore
8.30
自引率
7.50%
发文量
335
审稿时长
1.8 months
期刊介绍: Journal of Inorganic and Organometallic Polymers and Materials [JIOP or JIOPM] is a comprehensive resource for reports on the latest theoretical and experimental research. This bimonthly journal encompasses a broad range of synthetic and natural substances which contain main group, transition, and inner transition elements. The publication includes fully peer-reviewed original papers and shorter communications, as well as topical review papers that address the synthesis, characterization, evaluation, and phenomena of inorganic and organometallic polymers, materials, and supramolecular systems.
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