Literature DB >> 12109730

Measurement of triclosan in wastewater treatment systems.

Drew C McAvoy1, Bert Schatowitz, Martin Jacob, Armin Hauk, William S Eckhoff.   

Abstract

The objective of this study was to investigate the fate and removal of triclosan (TCS; 5-chloro-2-[2,4-dichloro-phenoxy]-phenol), an antimicrobial agent used in a variety of household and personal-care products, in wastewater treatment systems. This objective was accomplished by monitoring the environmental concentrations of TCS, higher chlorinated derivatives of TCS (4,5-dichloro-2-[2,4-dichloro-phenoxy]-phenol [tetra II]; 5,6-dichloro-2-[2,4-dichloro-phenoxy]-phenol [tetra III]; and 4,5,6-trichloro-2-(2,4-dichloro-phenoxy)-phenol [penta]), and a potential biotransformation by-product of TCS (5-chloro-2-[2,4-dicholoro-phenoxy]-anisole [TCS-OMe]) during wastewater treatment. These analytes were isolated from wastewater by using a C18 solid-phase extraction column and from sludge with supercritical fluid CO2. Once the analytes were isolated, they were derivatized to form trimethylsilylethers before quantitation by gas chromatography-mass spectrometry. Recovery of TCS from laboratory-spiked wastewater samples ranged from 79 to 88% for influent, 36 to 87% for final effluent, and 70 to 109% for primary sludge. Field concentrations of TCS in influent wastewater ranged from 3.8 to 16.6 microg/L and concentrations for final effluent ranged from 0.2 to 2.7 microg/L. Removal of TCS by activated-sludge treatment was approximately 96%, whereas removal by trickling-filter treatment ranged from 58 to 86%. The higher chlorinated tetra-II, tetra-III, and penta closans were below quantitation in all of the final effluent samples, except for one sampling event. Digested sludge concentrations of TCS ranged from 0.5 to 15.6 microg/g (dry wt), where the lowest value was from an aerobic digestion process and the highest value was from an anaerobic digestion process. Analysis of these results suggests that TCS is readily biodegradable under aerobic conditions, but not under anaerobic conditions. The higher chlorinated closans were near or below the limit of quantitation in all of the digested sludge samples. Based on results from this study, the chlorinated analogues and biotransformation by-product of TCS are expected to be very low in receiving waters and sludge-amended soils.

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Year:  2002        PMID: 12109730

Source DB:  PubMed          Journal:  Environ Toxicol Chem        ISSN: 0730-7268            Impact factor:   3.742


  50 in total

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Authors:  Evelyn Walters; Kristin McClellan; Rolf U Halden
Journal:  Water Res       Date:  2010-07-27       Impact factor: 11.236

3.  Occurrence of triclosan in the tropical rivers receiving the effluents from the hospital wastewater treatment plant.

Authors:  Gordon C C Yang; Hsin-Jen Tsai; Fu-Kuei Chang
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4.  Survey of the occurrence of pharmaceuticals in Spanish finished drinking waters.

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5.  GC/MS analysis of triclosan and its degradation by-products in wastewater and sludge samples from different treatments.

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Journal:  Environ Sci Pollut Res Int       Date:  2015-03-27       Impact factor: 4.223

6.  Degradation of triclosan in the presence of p-aminobenzoic acid under simulated sunlight irradiation.

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7.  Occurrence and removal of triclosan in Canadian wastewater systems.

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8.  Toxicogenomic response of Rhodospirillum rubrum S1H to the micropollutant triclosan.

Authors:  Benny F G Pycke; Guido Vanermen; Pieter Monsieurs; Heleen De Wever; Max Mergeay; Willy Verstraete; Natalie Leys
Journal:  Appl Environ Microbiol       Date:  2010-04-02       Impact factor: 4.792

9.  Effects of triclosan on zebrafish early-life stages and adults.

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Review 10.  Triclosan: A Widespread Environmental Toxicant with Many Biological Effects.

Authors:  Mei-Fei Yueh; Robert H Tukey
Journal:  Annu Rev Pharmacol Toxicol       Date:  2016       Impact factor: 13.820

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