高分子纳米复合材料光催化降解环境基质中多核芳烃的研究进展

A. Munyengabe, L. Sibali, P. Ndibewu
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引用次数: 0

摘要

近年来,金属氧化物纳米颗粒在水处理中的应用引起了人们的极大兴趣。选择用于掺入活性催化剂颗粒的聚合物是由它们所显示的几个优点引起的。这些优点包括机械稳定性、化学惰性和抗紫外线辐射、环境稳定性、易用性和低价格。此外,聚合物纳米复合材料(PNMs)作为光催化剂的使用提供了材料易于分离和再利用的可能性,从而消除了后处理分离过程,并隐含地降低了该过程的成本。本文主要综述了光催化降解环境基质中多核芳烃(PAHs)的研究进展。它进一步探讨了研究和市场的一些趋势。综述了多环芳烃在光催化过程中的解毒机制和毒理学效应,并介绍了其作为环境污染控制和修复的绿色替代方法的研究进展。它进一步批判性地探讨了改善pmms表征和测试工作流程的不同方法,以及对多环芳烃分析的新需求。最后,它提供了对如何建立和优化pmms制造方法的理解,同时避免昂贵的时间陷阱,以防止在解决多环芳烃相关的环境污染问题中获得正确答案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Advances in Polymer Nanocomposite Materials for Photocatalytic Degradation of Polynuclear Aromatic Hydrocarbons in Environmental Matrices: A Review
The immobilization of metal oxide nanoparticles into different anchoring media has recently gained great interest owing to their applications in water treatment. The choice of the polymers for the incorporation of the active catalyst particle is highly motivated by several advantages displayed by them. These include mechanical stability, chemical inertness and resistance to ultraviolet radiations, environmental stability, ease availability, and low prices. Additionally, the use of polymer nanocomposite materials (PNMs) as photocatalysts offers the possibility of a facile separation and reuse of the materials, eliminating thus the post-treatment separation processes and implicitly reducing the costs of the procedure. However, this review paper focused on recent advances made in PNMs for the photocatalytic decontamination of polynuclear aromatic hydrocarbons (PAHs) in environmental matrices. It further explores some trends in research and the markets. The review also shows the current advances made on the understanding of detoxification mechanisms and toxicological effects of PAHs in photocatalytic processes as a green alternative method for environmental pollution control and remediation. It further critically explores different ways to improve workflows for PNMs characterization and testing and the emerging need for the analysis of PAHs. It finally provides insights into the understanding of how to set up and optimize manufacturing methods of PNMs while avoiding costly time traps that prevent getting the correct answer in addressing PAH-related environmental pollution problems. 
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