Pharmaceutical Micropollutant Treatment with UV–LED/TiO2 Photocatalysis under Various Lighting and Matrix Conditions

Photochem Pub Date : 2022-07-01 DOI:10.3390/photochem2030035
Monika R. Snowdon, R. Liang, Jocelyn C. Van Leeuwen, Olivia M. Schneider, Abrar A. Khan, L. C. Li Chun Fong, N. Zhou, M. Servos
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引用次数: 2

Abstract

The persistence of pharmaceuticals and personal care products (PPCPs) in water has been a cause for concern for several years. Many studies have successfully used TiO2/UV photocatalysis to remove these compounds from water. In order to optimize these systems for large-scale water treatment, the effects of the reaction matrix, methods to improve energy efficiency, and methods for easy catalyst separation must be considered. The following study examines the photocatalytic degradation of a cocktail of 18 PPCPs using a porous titanium–titanium dioxide membrane and the effect of solution pH on kinetic rate constants. The addition of methanol to the reaction—commonly used as a carrier solvent—had a significant effect on kinetic rate constants even at low concentrations. Solution pH was also found to influence kinetic rate constants. Compounds had higher kinetic rate constants when they were oppositely charged to the membrane at experimental pH as opposed to similarly charged, suggesting that electrostatic forces have a significant effect. The controlled periodic illumination of UV–LEDs was also investigated to increase photonic efficiency. The dual-frequency light cycle used did not cause a decrease in degradation for many compounds, successfully increasing the photonic efficiency without sacrificing performance.
不同光照和基质条件下UV–LED/TiO2光催化处理药物微污染物
多年来,药品和个人护理产品(PPCP)在水中的持久性一直令人担忧。许多研究已经成功地使用TiO2/UV光催化从水中去除这些化合物。为了优化这些用于大规模水处理的系统,必须考虑反应基质的影响、提高能源效率的方法以及容易分离催化剂的方法。以下研究考察了使用多孔钛-二氧化钛膜对18种PPCP混合物的光催化降解,以及溶液pH对动力学速率常数的影响。在反应中加入甲醇——通常用作载体溶剂——即使在低浓度下也会对动力学速率常数产生显著影响。还发现溶液pH会影响动力学速率常数。当化合物在实验pH下与膜带相反电荷时,其动力学速率常数比带类似电荷时更高,这表明静电力具有显著影响。还研究了UV–LED的受控周期照明以提高光子效率。所使用的双频光循环并没有减少许多化合物的降解,在不牺牲性能的情况下成功地提高了光子效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
3.60
自引率
0.00%
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