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用于微波诱导灰水中有机污染物光降解的氧化铁纳米粒子的制备。

Preparation of bismuth ferric oxide nanoparticles for the microwave-induced photo-degradation of organic pollutants in greywater.

机构信息

Department of Chemical Engineering, NIT Raipur, Raipur, Chhattisgarh, India.

Department of Chemical Engineering, NIT Raipur, Raipur, Chhattisgarh, India.

出版信息

Environ Res. 2024 Dec 1;262(Pt 1):119814. doi: 10.1016/j.envres.2024.119814. Epub 2024 Aug 17.

Abstract

This work demonstrates a thorough investigation into the synthesis and characterization of bismuth ferric oxide (BFO) photocatalyst for microwave-induced photodegradation of organic pollutants in greywater. Microwave (MW) irradiation was executed to enhance the generation of reactive oxygen species, contributing to the catalytic effectiveness of the synthesized photocatalyst. Through an efficient ultrasound-assisted synthesis process, perovskite BFO nanoparticles with a rhombohedral crystal structure and a crystallite size of around 15 nm were successfully manufactured. Comprehensive characterization employing various analytical techniques including X-ray diffraction (XRD), Energy Dispersive X-ray Analysis (EDAX), Fourier Transform Infrared and Raman Spectroscopy, UV-Visible Diffuse Reflectance Spectroscopy (UVDRS), photoluminescence spectroscopy, Scanning Electron Microscopy (SEM), and Brunauer-Emmett-Teller (BET) studies provided insights into the structural, elemental, spectral, optical, morphological, and surface area properties of the nanoparticles. The UV-vis spectroscopy and Tauc's plot were employed to elucidate the band structure of the photocatalyst, providing insights into its essential electronic properties for catalytic applications. With a narrow optical band gap of 2.13 eV, the synthesized photocatalyst demonstrated suitability for optical applications and exhibited substantial catalytic activity in the microwave-induced photocatalytic degradation of greywater. Remarkably, it achieved a 93.5% reduction in total organic carbon (TOC) within 180 min under moderate 50-W illumination. Refining process parameters through optimization studies notably augmented degradation efficiency. Scavenging investigations validated the efficient mineralization of total organic carbon content. Kinetic assessments provided mechanistic insights into improved catalytic activity of BFO, which was attributed to a changed band structure that allows for fast charge transfer across interfacial layers. Moreover, the stability and reusability of the BFO photocatalyst were assessed over five cycles, highlighting its potential practical application as an efficient and reusable photocatalyst for greywater treatment. These findings underscore the promising prospects of BFO in addressing environmental challenges and advancing sustainable wastewater treatment technologies.

摘要

这项工作深入研究了微波诱导灰水中有机污染物降解的铁酸铋(BFO)光催化剂的合成与表征。采用微波(MW)辐照来增强活性氧物种的生成,从而提高合成光催化剂的催化效率。通过高效的超声辅助合成工艺,成功制备了具有三方晶系结构和约 15nm 晶粒尺寸的钙钛矿 BFO 纳米粒子。利用各种分析技术(包括 X 射线衍射(XRD)、能量色散 X 射线分析(EDAX)、傅里叶变换红外和拉曼光谱、紫外可见漫反射光谱(UVDRS)、光致发光光谱、扫描电子显微镜(SEM)和 Brunauer-Emmett-Teller(BET)研究)进行了全面的表征,深入了解了纳米粒子的结构、元素、光谱、光学、形态和比表面积性质。通过 UV-vis 光谱和 Tauc 图阐明了光催化剂的能带结构,揭示了其对于催化应用的基本电子性质。合成的光催化剂具有 2.13eV 的窄光学带隙,适用于光学应用,并在微波诱导灰水光催化降解中表现出显著的催化活性。在适度的 50W 光照下,仅 180min 内总有机碳(TOC)的去除率就达到了 93.5%。通过优化研究精炼工艺参数,显著提高了降解效率。通过清除实验验证了总有机碳含量的有效矿化。动力学评估提供了关于 BFO 提高催化活性的机理见解,这归因于带结构的改变,使得在界面层之间能够快速进行电荷转移。此外,还评估了 BFO 光催化剂在五个循环中的稳定性和可重复使用性,突出了其作为高效且可重复使用的灰水催化剂的潜在实际应用。这些发现强调了 BFO 在应对环境挑战和推进可持续废水处理技术方面的广阔前景。

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