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新型 PWO/ZnO 异质结构纳米复合材料的合成、表征及光催化性能。

Novel PWO/ ZnO heterostructured nanocomposites: Synthesis, characterization, and photocatalytic performance.

机构信息

Department of Nanotechnology, Faculty of New Sciences and Technologies, Semnan University, Semnan, 35131-19111, Iran.

Department of Materials and Metallurgical Engineering, Semnan University, Semnan, Iran.

出版信息

J Environ Manage. 2023 Nov 1;345:118586. doi: 10.1016/j.jenvman.2023.118586. Epub 2023 Jul 11.

Abstract

Photocatalytic degradation is becoming an increasingly attractive method for addressing environmental remediation challenges. In this work, the novel pure PWO/ZnO and doped PWO: Er/ZnO: Ag heterostructure nanocomposites with premier photocatalytic efficiency were synthesized via a simple co-precipitation method followed by a solvothermal procedure. X-ray diffraction (XRD), diffuse reflectance spectroscopy (DRS), X-ray photoelectron spectroscopy (XPS), high-resolution transmission electron microscopy (HRTEM), energy dispersive X-ray (EDX), and ultraviolet-visible (UV-Vis) absorbance measurements techniques were employed to characterize the structural and optical properties. HRTEM images prove the possibility of intimate contact formation at the pure and doped PWO/ZnO heterostructure nanocomposite interfaces. The photocatalytic performance of the PWO/ZnO heterostructure nanocomposites in the degradation of the methylene blue (MB) and methyl orange (MO) dyes under UVA light was evaluated. The photocatalysts' ability in the mineralization of organic pollutants was confirmed by the TOC test. BET and zeta potential analyses were used to study the dye adsorption mechanisms. Additionally, adsorption isotherms and kinetics have been investigated to describe the adsorption of MB and MO into the samples. The degradation rates of MB with PWO/ZnO and PWO: Er/ZnO: Ag heterostructure nanocomposites were 4.7 and 6.6 times higher than those of PWO and PWO: Er nanoparticles. This rate for MO degradation is 5.2 and 3.5 times higher than that of pure PWO and PWO: Er nanoparticles, respectively. This study outlines an easy method to develop innovative, highly effective heterostructure nanocomposites capable of converting UVA light into photocatalytic performance.

摘要

光催化降解技术正成为解决环境修复挑战的一种极具吸引力的方法。在这项工作中,通过简单的共沉淀法和随后的溶剂热法,合成了具有卓越光催化效率的新型纯 PWO/ZnO 和掺杂 PWO:Er/ZnO:Ag 异质结构纳米复合材料。采用 X 射线衍射(XRD)、漫反射光谱(DRS)、X 射线光电子能谱(XPS)、高分辨率透射电子显微镜(HRTEM)、能谱(EDX)和紫外-可见(UV-Vis)吸收测量技术对结构和光学性质进行了表征。HRTEM 图像证明了在纯和掺杂 PWO/ZnO 异质结构纳米复合材料界面形成紧密接触的可能性。通过 UVA 光评估了 PWO/ZnO 异质结构纳米复合材料在降解亚甲基蓝(MB)和甲基橙(MO)染料中的光催化性能。通过 TOC 测试证实了催化剂在有机污染物矿化中的能力。BET 和 zeta 电位分析用于研究染料吸附机制。此外,还研究了吸附等温线和动力学,以描述 MB 和 MO 吸附到样品中的情况。PWO/ZnO 和 PWO:Er/ZnO:Ag 异质结构纳米复合材料对 MB 的降解速率分别比 PWO 和 PWO:Er 纳米颗粒高 4.7 和 6.6 倍。MO 的降解速率分别比纯 PWO 和 PWO:Er 纳米颗粒高 5.2 和 3.5 倍。本研究概述了一种开发创新、高效异质结构纳米复合材料的简单方法,该方法能够将 UVA 光转化为光催化性能。

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