Literature DB >> 16571361

Photocatalytic oxidation of triclosan.

Jimmy C Yu1, T Y Kwong, Q Luo, Zongwei Cai.   

Abstract

In the spring of 2003, there was an outbreak of the severe respiratory syndrome (SARS) in Hong Kong. Health concerns have thus triggered an increased and predominant use of various types of household cleansing agents such as triclosan (5-chloro-2-(2,4-dichlorophenoxy)phenol). However, it has been reported recently that triclosan could be photochemically converted to toxic 2,8-dichlorodibenzo-p-dioxin (2,8-Cl(2)DD) in the environment. It is therefore necessary to develop environmentally friendly methods for the treatment of triclosan. To this end, photocatalytic degradation of triclosan in aqueous solution was conducted using TiO(2) (Degussa P25) under irradiation of UV light (lambda < 365 nm). It was found that triclosan could be degraded by this approach. Hydrogen peroxide was added to enhance the degradation process, and the optimal initial hydrogen peroxide concentration for triclosan degradation was 0.005% (w/v). Product identification indicated that triclosan oxidation occurred at its phenol moiety and yielded quinone and hydroquinone intermediates. The formation of a dichlorophenol intermediate in triclosan degradation suggested bond-breaking of the ether linkage occurred during the process. Moreover, no chlorinated dibenzo-p-dioxin congener was detected. These findings confirm that the photocatalytic degradation of triclosan is an environmentally friendly process.

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Year:  2006        PMID: 16571361     DOI: 10.1016/j.chemosphere.2006.02.011

Source DB:  PubMed          Journal:  Chemosphere        ISSN: 0045-6535            Impact factor:   7.086


  7 in total

Review 1.  Occurrence and toxicity of antimicrobial triclosan and by-products in the environment.

Authors:  Gilles Bedoux; Benoit Roig; Olivier Thomas; Virginie Dupont; Barbara Le Bot
Journal:  Environ Sci Pollut Res Int       Date:  2011-11-05       Impact factor: 4.223

Review 2.  Triclosan exposure, transformation, and human health effects.

Authors:  Lisa M Weatherly; Julie A Gosse
Journal:  J Toxicol Environ Health B Crit Rev       Date:  2017       Impact factor: 6.393

3.  Nanocomposite Au NP/TiO2 thin film in the efficient remediation of aqueous solutions contaminated with emerging micro-pollutants.

Authors:  Lalliansanga Nil; Alka Tiwari; Alok Shukla; Diwakar Tiwari; Seung Mok Lee
Journal:  Environ Sci Pollut Res Int       Date:  2018-05-10       Impact factor: 4.223

4.  Effectiveness of zinc oxide-assisted photocatalysis for concerned constituents in reclaimed wastewater: 1,4-Dioxane, trihalomethanes, antibiotics, antibiotic resistant bacteria (ARB), and antibiotic resistance genes (ARGs).

Authors:  Myung Hwangbo; Everett Caleb Claycomb; Yina Liu; Theodore E G Alivio; Sarbajit Banerjee; Kung-Hui Chu
Journal:  Sci Total Environ       Date:  2018-08-27       Impact factor: 7.963

5.  Chemical conversion pathways and kinetic modeling for the OH-initiated reaction of triclosan in gas-phase.

Authors:  Xue Zhang; Chenxi Zhang; Xiaomin Sun; Lingyan Kang; Yan Zhao
Journal:  Int J Mol Sci       Date:  2015-04-10       Impact factor: 5.923

Review 6.  Triclosan: current status, occurrence, environmental risks and bioaccumulation potential.

Authors:  Gurpreet Singh Dhillon; Surinder Kaur; Rama Pulicharla; Satinder Kaur Brar; Maximiliano Cledón; Mausam Verma; Rao Y Surampalli
Journal:  Int J Environ Res Public Health       Date:  2015-05-22       Impact factor: 3.390

Review 7.  SARS-CoV-2 pharmaceutical drugs: a critical review on the environmental impacts, chemical characteristics, and behavior of advanced oxidation processes in water.

Authors:  Monserrat Castañeda-Juárez; Ivonne Linares-Hernández; Verónica Martínez-Miranda; Elia Alejandra Teutli-Sequeira; Luis Antonio Castillo-Suárez; Ana Gabriela Sierra-Sánchez
Journal:  Environ Sci Pollut Res Int       Date:  2022-08-05       Impact factor: 5.190

  7 in total

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