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使用固定在硅胶上的二氧化钛光催化降解有机磷酸酯和膦酰甘氨酸农药。

Photocatalytic degradation of organophosphate and phosphonoglycine pesticides using TiO2 immobilized on silica gel.

作者信息

Echavia Glory Rose Mangat, Matzusawa Fumiko, Negishi Nobuaki

机构信息

Industrial Technology Development Institute, Department of Science and Technology, Gen. Santos Ave., DOST Compound, Taguig City 1631, Philippines.

出版信息

Chemosphere. 2009 Jul;76(5):595-600. doi: 10.1016/j.chemosphere.2009.04.055. Epub 2009 May 29.

Abstract

The photocatalytic degradation of the three pesticides acephate, dimethoate, and glyphosate in water has been investigated using UV light and TiO2 immobilized on silica gel as photocatalyst. Results show that the pesticides can be efficiently degraded by the UV/TiO2 system used in the study. Complete (100%) decomposition of dimethoate and glyphosate was attained within 60 min of irradiation, while total degradation of acephate occurred after 105 min of photocatalytic treatment. Acephate and dimethoate decomposition followed the Langmuir-Hinshelwood apparent first-order degradation kinetics, suggesting the photocatalytic nature of pesticide disappearance, whereas glyphosate decomposition was governed by both adsorption and photocatalytic reactions. Evolution of heteroatoms at their highest oxidized states such as SO(4)(2-), NO(3)(-), and PO(4)(3-) ions provides evidence that pesticide degradation occurred primarily through photocatalytic oxidation reactions. Non-detection of toxic intermediates such as methamidophos and omethoate that have been reported in other studies demonstrates rapid destruction of the pesticides into harmless byproducts using the system.

摘要

采用紫外光和负载在硅胶上的二氧化钛作为光催化剂,研究了水中三种农药乙酰甲胺磷、乐果和草甘膦的光催化降解。结果表明,研究中使用的紫外/二氧化钛体系能够有效降解这些农药。照射60分钟内,乐果和草甘膦完全(100%)分解,而乙酰甲胺磷在光催化处理105分钟后完全降解。乙酰甲胺磷和乐果的分解遵循朗缪尔-欣谢尔伍德表观一级降解动力学,表明农药消失具有光催化性质,而草甘膦的分解受吸附和光催化反应共同控制。诸如硫酸根离子(SO(4)(2-))、硝酸根离子(NO(3)(-))和磷酸根离子(PO(4)(3-))等高氧化态杂原子的生成,证明农药降解主要通过光催化氧化反应进行。未检测到其他研究中报道的诸如甲胺磷和氧乐果等有毒中间体,表明使用该体系可将农药迅速分解为无害副产物。

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