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利用Cu-CuO/TiO纳米复合材料中空纤维对MO的吸附动力学及光催化降解研究

Investigation of MO Adsorption Kinetics and Photocatalytic Degradation Utilizing Hollow Fibers of Cu-CuO/TiO Nanocomposite.

作者信息

Theodorakopoulos George V, Papageorgiou Sergios K, Katsaros Fotios K, Romanos George Em, Beazi-Katsioti Margarita

机构信息

Institute of Nanoscience and Nanotechnology, National Center for Scientific Research "Demokritos", 15341 Agia Paraskevi, Athens, Greece.

School of Chemical Engineering, National Technical University of Athens, Zografou Campus, 9 Iroon Polytechniou Street, Zografou, 15772 Athens, Greece.

出版信息

Materials (Basel). 2024 Sep 23;17(18):4663. doi: 10.3390/ma17184663.

Abstract

This comprehensive study explores the kinetics of adsorption and its photocatalytic degradation of methyl orange (MO) using an advanced copper-decorated photocatalyst in the form of hollow fibers (HFs). Designed to boost both adsorption capacity and photocatalytic activity, the photocatalyst was tested in batch experiments to efficiently remove MO from aqueous solutions. Various isotherm models, including Langmuir, Freundlich, Sips, Temkin, and Dubinin-Radushkevich, along with kinetic models like pseudo-first and pseudo-second order, Elovich, Bangham, and Weber-Morris, were utilized to assess adsorption capacity and kinetics at varying initial concentrations. The results indicated a favorable MO physisorption on the nanocomposite photocatalyst under specific conditions. Further analysis of photocatalytic degradation under UV exposure revealed that the material maintained high degradation efficiency and stability across different MO concentrations. Through the facilitation of reactive oxygen species generation, oxygen played a crucial role in enhancing photocatalytic performance, while the degradation process following the Langmuir-Hinshelwood model. The study also confirmed the robustness and sustained activity of the nanocomposite photocatalyst, which could be regenerated and reused over five successive cycles, maintaining 92% of their initial performance at concentrations up to 15 mg/L. Overall, this effective nanocomposite photocatalyst structured in the form of HF shows great promise for effectively removing organic pollutants through combined adsorption and photocatalysis, offering valuable potential in wastewater treatment and environmental remediation.

摘要

这项综合性研究探索了一种先进的中空纤维(HF)形式的铜修饰光催化剂对甲基橙(MO)的吸附动力学及其光催化降解性能。为提高吸附容量和光催化活性而设计的该光催化剂,在间歇实验中进行了测试,以有效去除水溶液中的MO。利用包括朗缪尔、弗伦德里希、西普斯、坦金和杜比宁-拉杜舍维奇等各种等温线模型,以及拟一级和拟二级、埃洛维奇、班汉姆和韦伯-莫里斯等动力学模型,来评估不同初始浓度下的吸附容量和动力学。结果表明,在特定条件下,MO在纳米复合光催化剂上发生了有利的物理吸附。对紫外线照射下光催化降解的进一步分析表明,该材料在不同MO浓度下均保持了较高的降解效率和稳定性。通过促进活性氧的生成,氧气在提高光催化性能方面发挥了关键作用,而降解过程遵循朗缪尔-欣谢尔伍德模型。该研究还证实了纳米复合光催化剂的稳健性和持续活性,其可连续再生和重复使用五个循环,在浓度高达15 mg/L时保持其初始性能的92%。总体而言,这种以HF形式构建的有效纳米复合光催化剂在通过联合吸附和光催化有效去除有机污染物方面显示出巨大潜力,在废水处理和环境修复中具有重要价值。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d443/11434048/f3316d6de82b/materials-17-04663-g001.jpg

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