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阿特拉津降解的光化学过程:方法学途径。

Photochemical processes for atrazine degradation: methodological approach.

作者信息

Héquet V, Gonzalez C, Le Cloirec P

机构信息

Départerment Systèmes Energétiques et Environnement, Ecole des Mines de Nantes, France.

出版信息

Water Res. 2001 Dec;35(18):4253-60. doi: 10.1016/s0043-1354(01)00166-x.

Abstract

Numerous studies have been carried out on s-triazines, and more specifically on atrazine, with the long-term objective of resolving the problems caused by these herbicides: removing them from drinking water. However, applications have remained too limited. So far, processes based on photochemical degradation have been little implemented. We, therefore, investigated the development of photochemical processes, emphasizing their capacity to degrade triazine by photolytic and photocatalytic mode. The study sought to assess the performance of these ssstems. Experiments ts showed that according to a medium pressure mercury source (UV-Vis irradiation), the photolytic degradation of atrazine was very efficient, with a best atrazine degradation half-life shorter that 5 min. The main degradation pathway was deshalogenation. The photocatalytic degradation of atrazine under irradiation over 290 nm in the presence of titanium dioxide was shown to be efficient too, with a half-life of about 20 min. In this case an experimental design was conducted so as to assess the influence of various parameters: pH, water medium, and amount of catalyst. There has been observational evidence for the efficiency of the processes investigated here and for potential technological developments as regards drinking water treatment.

摘要

人们已经对均三嗪,尤其是阿特拉津进行了大量研究,其长期目标是解决这些除草剂所造成的问题:将它们从饮用水中去除。然而,应用仍然非常有限。到目前为止,基于光化学降解的工艺很少得到应用。因此,我们研究了光化学工艺的发展,重点关注其通过光解和光催化模式降解三嗪的能力。该研究旨在评估这些系统的性能。实验表明,根据中压汞源(紫外 - 可见辐射),阿特拉津的光解降解非常有效,阿特拉津降解的最佳半衰期短于5分钟。主要降解途径是脱卤反应。在二氧化钛存在下,290纳米以上辐射下阿特拉津的光催化降解也被证明是有效的,半衰期约为20分钟。在这种情况下,进行了实验设计以评估各种参数的影响:pH值、水介质和催化剂用量。这里所研究的工艺的有效性以及饮用水处理方面潜在的技术发展已有观测证据。

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