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吸附在二氧化硅颗粒上的常用农药的光解降解

Photolytic degradation of commonly used pesticides adsorbed on silica particles.

作者信息

Samia Boulos, Socorro Joanna, Durand Amandine, Quivet Etienne, Wortham Henri

机构信息

Aix Marseille Univ, CNRS, LCE, Marseille, France.

Aix Marseille Univ, CNRS, LCE, Marseille, France.

出版信息

Sci Total Environ. 2024 Nov 1;949:174964. doi: 10.1016/j.scitotenv.2024.174964. Epub 2024 Jul 25.

Abstract

The currently used pesticides are mostly semi-volatile organic compounds. As a result, a fraction of them can be adsorbed on atmospheric aerosol surface. Their atmospheric photolysis is poorly documented, and gaps persist in understanding their reactivity in the particle phase. Laboratory experiments were conducted to determine the photolysis rates of eight commonly used pesticides (i.e., cyprodinil, deltamethrin, difenoconazole, fipronil, oxadiazon, pendimethalin, permethrin, and tetraconazole) using a flow reactor. These pesticides were individually adsorbed on hydrophobic silica particles and exposed to a filtered xenon lamp to mimic atmospheric aerosols and sunlight irradiation, respectively. The estimated photolysis rate constants ranged from less than (3.4 ± 0.3) × 10 s (permethrin; >47.2 days) to (3.8 ± 0.2) × 10 s (Fipronil; 0.4 days), depending on the considered compound. Moreover, this study assessed the influence of pesticide mixtures on their photolysis rates, revealing that certain pesticides can act as photosensitizers, thereby enhancing the reactivity of permethrin and tetraconazole. This study underscores the importance of considering photolysis degradation when evaluating pesticide fate and reactivity, as it can be a predominant degradation pathway for some pesticides. This contributes to an enhanced understanding of their behavior in the atmosphere and their impact on air quality.

摘要

目前使用的农药大多是半挥发性有机化合物。因此,其中一部分会吸附在大气气溶胶表面。它们在大气中的光解情况记录较少,在理解其在颗粒相中的反应性方面仍存在空白。使用流动反应器进行了实验室实验,以测定八种常用农药(即嘧菌环胺、溴氰菊酯、苯醚甲环唑、氟虫腈、恶草酮、二甲戊灵、氯菊酯和四氟醚唑)的光解速率。这些农药分别吸附在疏水性二氧化硅颗粒上,并分别暴露于经过滤的氙灯下,以模拟大气气溶胶和阳光照射。根据所考虑的化合物不同,估计的光解速率常数范围从小于(3.4±0.3)×10⁻⁵ s⁻¹(氯菊酯;>47.2天)到(3.8±0.2)×10⁻³ s⁻¹(氟虫腈;0.4天)。此外,本研究评估了农药混合物对其光解速率的影响,发现某些农药可作为光敏剂,从而增强氯菊酯和四氟醚唑的反应性。本研究强调了在评估农药归宿和反应性时考虑光解降解的重要性,因为它可能是某些农药的主要降解途径。这有助于加深对它们在大气中的行为及其对空气质量影响的理解。

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