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用于废水处理和细菌消毒的光活性纳米材料的声光催化

Sonophotocatalysis with Photoactive Nanomaterials for Wastewater Treatment and Bacteria Disinfection.

作者信息

Moradi Sina, Rodriguez-Seco Cristina, Hayati Farzan, Ma Dongling

机构信息

Institut National de la Recherche Scientifique (INRS)-Centre Énergie Materiaux et Telécommunications, 1650 Boulevard Lionel-Boulet, VarennesJ3X 1P7, Québec, Canada.

Department of Chemical and Biological Engineering, University of Saskatchewan, SaskatoonS7N 5A9, SK, Canada.

出版信息

ACS Nanosci Au. 2023 Jan 27;3(2):103-129. doi: 10.1021/acsnanoscienceau.2c00058. eCollection 2023 Apr 19.

Abstract

Sonophotocatalysis is described as a combination of two individual processes of photocatalysis and sonocatalysis. It has proven to be highly promising in degrading dissolved contaminants in wastewaters as well as bacteria disinfection applications. It eliminates some of the main disadvantages observed in each individual technique such as high costs, sluggish activity, and prolonged reaction times. The review has accomplished a critical analysis of sonophotocatalytic reaction mechanisms and the effect of the nanostructured catalyst and process modification techniques on the sonophotocatalytic performance. The synergistic effect between the mentioned processes, reactor design, and the electrical energy consumption has been discussed due to their importance when implementing this novel technology in practical applications, such as real industrial or municipal wastewater treatment plants. The utilization of sonophotocatalysis in disinfection and inactivation of bacteria has also been reviewed. In addition, we further suggest improvements to promote this technology from the lab-scale to large-scale applications. We hope this up-to-date review will advance future research in this field and push this technology toward widespread adoption and commercialization.

摘要

声光催化被描述为光催化和声催化这两个独立过程的结合。事实证明,它在降解废水中的溶解污染物以及细菌消毒应用方面极具前景。它消除了在每种单独技术中观察到的一些主要缺点,如成本高、活性低和反应时间长。该综述对声光催化反应机理以及纳米结构催化剂和工艺改性技术对声光催化性能的影响进行了批判性分析。由于在实际应用(如实际工业或城市污水处理厂)中实施这项新技术时,上述过程之间的协同效应、反应器设计和电能消耗非常重要,因此对其进行了讨论。还综述了声光催化在细菌消毒和灭活方面的应用。此外,我们进一步提出改进建议,以推动这项技术从实验室规模应用向大规模应用发展。我们希望这篇最新综述能推动该领域的未来研究,并促使这项技术得到广泛应用和商业化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fdf8/10125344/291f445ab08b/ng2c00058_0001.jpg

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