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一种创新的超声、Fe(2+)和 TiO(2)光助处理方法,用于双酚 A 的矿化。

An innovative ultrasound, Fe(2+) and TiO(2) photoassisted process for bisphenol A mineralization.

机构信息

Grupo de Electroquímica, Instituto de Química, Facultad de Ciencias Exactas y Naturales, Universidad de Antioquia, A. A. 1226, Medellín, Colombia.

出版信息

Water Res. 2010 Apr;44(7):2245-52. doi: 10.1016/j.watres.2009.12.050. Epub 2010 Jan 7.

Abstract

This paper explores the degradation of a model pollutant, bisphenol A, by an advanced oxidation process that combines sonolysis, Fe(2+), and TiO(2) in a photoassisted process. Experiments were done under saturated oxygen conditions. The effect of different Fe(2+) (0.56 and 5.6 mg/L) and TiO(2) (10 and 50 mg/L) concentrations was investigated on both the elimination and mineralization of the pollutant. A pronounced synergistic effect that led to the complete and rapid elimination of dissolved organic carbon (DOC) was observed even at low catalyst loadings. In this system, almost a complete removal of DOC (93%) was observed after 4 h using 10 and 5.6 mg/L of TiO(2) and Fe(2+), respectively, whereas at the same time, only 5, 6, and 22% of DOC was removed by an individual process alone (TiO(2) photocatalysis, ultrasound, and photo-Fenton, respectively). In this system, ultrasound has the principal role of eliminating the initial substrate and providing hydrogen peroxide for the photocatalytic systems, while photo-Fenton and TiO(2) photocatalysis are mainly responsible for the transformation of the intermediates in CO(2) and H(2)O. The role of H(2)O(2) generated from the sonochemical process is also discussed.

摘要

本文探讨了一种先进的氧化过程,该过程将超声、Fe(2+)和 TiO(2)结合在光辅助过程中,用于降解一种模型污染物双酚 A。实验在饱和氧条件下进行。研究了不同浓度的 Fe(2+)(0.56 和 5.6mg/L)和 TiO(2)(10 和 50mg/L)对污染物的去除和矿化的影响。即使在低催化剂负载下,也观察到明显的协同效应,导致溶解有机碳(DOC)的完全和快速消除。在该系统中,使用 10 和 5.6mg/L 的 TiO(2)和 Fe(2+)分别在 4 小时后观察到几乎完全去除 DOC(93%),而在相同时间内,单独的 TiO(2)光催化、超声和光-Fenton 法仅分别去除了 5%、6%和 22%的 DOC。在该系统中,超声主要作用是消除初始底物并为光催化系统提供过氧化氢,而光-Fenton 和 TiO(2)光催化主要负责将中间产物转化为 CO(2)和 H(2)O。还讨论了声化学过程中生成的 H(2)O(2)的作用。

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