合成新型钼酸铋/氧化铁薄膜,用于在光电催化系统中降解土霉素。

Elizabeth C Pastrana, Daniel Valdivia-Alvarez, Italo Espinoza Radenovich, Carlos D Gonzales-Lorenzo, Dunwei Wang, Juliana Ferreira de Brito, Maria Valnice Boldrin Zanoni, Hugo A Alarcón
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引用次数: 0

摘要

本研究利用前驱体溶液,通过浸涂技术制备了基于钼酸铋/氧化铁(Bi2MoO6/Fe2O3)薄膜的异质结构。异质结构沉积在掺氟氧化锡玻璃基底上。利用 X 射线衍射和 X 射线光电子能谱进行的详细表征表明,Bi2MoO6 形成了正交相,Fe2O3 中赤铁矿和磁铁矿共存。同时,场发射扫描电子显微镜截面图像证实了在 Fe2O3 沉积过程中形成了清晰的 Bi2MoO6 薄膜。异质结构的光带隙能是通过漫反射光谱估算的,范围在 2.3 至 3.5 eV 之间。光致发光分析表明,Bi2MoO6/Fe2O3(Het)薄膜改善了光生电子和空穴的分离和转移速度。使用 Het 进行光电催化处理后,土霉素(OTC)的去除率达到 96.85%。此外,还对影响 OTC 光电催化降解的 pH 值、应用电位和清除剂检测等参数进行了变化。1O2 是主要的氧化剂,它攻击 OTC 环,启动并加速降解过程。根据对降解中间产物和 Bi2MoO6/Fe2O3 特性的分析,展示了 OTC 可能的降解途径和机制。与原始氧化物相比,制备的 Het 提高了土霉素的降解效率,这主要是由于直接 Z 型异质结构避免了光生电子-空穴对的电荷重组。最后,所制造的 Het 是一种有望用于高效和可持续药物去除应用的材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Synthesis of a novel bismuth molybdite/iron oxide thin film for oxytetracycline degradation in a photoelectrocatalytic system.

In this study, heterostructures based on Bismuth molybdite/iron oxide (Bi2MoO6/Fe2O3) thin films were fabricated by a dip-coating technique using precursor solutions. The heterostructures were deposited on fluorine-doped tin oxide glass substrates. From a detailed characterization using X-ray diffraction and X-ray photoelectron spectroscopy, the formation of the orthorhombic phase for Bi2MoO6 and the co-existence of hematite and maghemite in Fe2O3 was demonstrated. Meanwhile, the field emission scanning electron microscopy cross-section images confirm the formation of well-defined Bi2MoO6 film under the Fe2O3 deposition. The optical band gap energies for the heterostructure obtained were estimated from the diffuse reflectance spectra and ranged from 2.3 to 3.5 eV. Photoluminescence analysis revealed an improved separation and faster transfer of photogenerated electrons and holes for the Bi2MoO6/Fe2O3 (Het) film. The best oxytetracycline (OTC) removal percentage through photoelectrocatalytic treatment was 96.85% using the Het. Besides, were carried out the variation of parameters which affect the OTC photoelectrocatalytic degradation as pH, potential applied, and scavenger assay. The 1O2 was the oxidant predominate, which attack the OTC ring to initiate and accelerate the degradation process. Based on the analysis of degradation intermediates and characteristics of Bi2MoO6/Fe2O3, possible degradation pathways and mechanisms of OTC were displayed. An enhancement of oxytetracycline degradation efficiency of Het fabricated compared to pristine oxides was achieved mainly due to avoid the charge recombination of photogenerated electron-hole pairs provided by Direct Z-scheme heterostructure. Finally, the Het fabricated represents a promising material for efficient and sustainable pharmaceutical removal applications.

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