Transformation and stable isotope fractionation of the urban biocide terbutryn during biodegradation, photodegradation and abiotic hydrolysis

被引:13
|
作者
Junginger, Tobias [1 ]
Payraudeau, Sylvain [1 ]
Imfeld, Gwenael [1 ]
机构
[1] Univ Strasbourg, Inst Terre & Environm Strasbourg ITES, EOST, ENGEES,CNR,UMR 7063, F-67084 Strasbourg, France
关键词
CSIA; Terbutryn; Hydrolysis; Photodegradation; Biodegradation; Transformation products; COMPOUND-SPECIFIC ISOTOPE; ORGANIC CONTAMINANTS; PESTICIDE DEGRADATION; RISK-ASSESSMENT; S-TRIAZINES; WATER; CARBON; GROUNDWATER; MECHANISMS; PRODUCTS;
D O I
10.1016/j.chemosphere.2022.135329
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Terbutryn is a widely used biocide in construction materials like paint and render to prevent the growth of microorganisms, algae and fungi. Terbutryn is released from the facades into the environment during rainfall, contaminating surface waters, soil and groundwater. Knowledge of terbutryn dissipation from the facades to aquatic ecosystems is scarce. Here, we examined in laboratory microcosms degradation half-lives, formation of transformation products and carbon and nitrogen isotope fractionation during terbutryn direct (UV light with lambda = 254 nm and simulated sunlight) and indirect (simulated sunlight with nitrate) photodegradation, abiotic hydrolysis (pH = 1, 7 and 13), and aerobic biodegradation (stormwater pond sediment, soil and activated sludge). Biodegradation half-lives of terbutryn were high (> 80 d). Photodegradation under simulated sunlight and hydrolysis at extreme pH values indicated slow degradability and accumulation in the environment. Photodegradation resulted in a variety of transformation products, whereas abiotic hydrolysis lead solely to terbutryn-2-hydroxy in acidic and basic conditions. Biodegradation indicates degradation to terbutryn-2-hydroxy through terbutryn-sulfoxide. Compound-specific isotope analysis (CSIA) of terbutryn holds potential to differentiate degradation pathways. Carbon isotope fractionation values (epsilon C) ranged from-3.4 +/- 0.3 parts per thousand (hydrolysis pH 1) to +0.8 +/- 0.1 parts per thousand (photodegradation under UV light), while nitrogen isotope fractionation values ranged from-1.0 +/- 0.4 parts per thousand (simulated sunlight photodegradation with nitrate) to +3.4 +/- 0.2 parts per thousand (hydrolysis at pH 1). In contrast, isotope fractionation during biodegradation was insignificant. lambda(N/C) values ranged from-1.0 +/- 0.1 (hydrolysis at pH 1) to 2.8 +/- 0.3 (photodegradation under UV light), allowing to differentiate degradation pathways. Combining the formation of transformation products and stable isotope fractionation enabled identifying distinct degradation pathways. Altogether, this study highlights the potential of CSIA to follow terbutryn degradation in situ and differentiate prevailing degradation pathways, which may help to monitor urban biocide remediation and mitigation strategies.
引用
收藏
页数:11
相关论文
共 50 条
  • [31] Carbon and chlorine isotope fractionation associated with abiotic reductive transformation of chlorinated groundwater contaminants
    Hofstetter, TB
    Reddy, CM
    Xu, L
    Heraty, LJ
    Sturchio, NC
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2005, 230 : U2124 - U2124
  • [32] Stable silver isotope fractionation in the natural transformation process of silver nanoparticles
    Lu D.
    Liu Q.
    Zhang T.
    Cai Y.
    Yin Y.
    Jiang G.
    Nature Nanotechnology, 2016, 11 (8) : 682 - 686
  • [33] Stable silver isotope fractionation in the natural transformation process of silver nanoparticles
    Lu, Dawei
    Liu, Qian
    Zhang, Tuoya
    Cai, Yong
    Yin, Yongguang
    Jiang, Guibin
    NATURE NANOTECHNOLOGY, 2016, 11 (08) : 682 - +
  • [34] Assessing Transformation Processes of Organic Compounds Using Stable Isotope Fractionation
    Hofstetter, Thomas B.
    Schwarzenbach, Rene P.
    Bernasconi, Stefano M.
    ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2008, 42 (21) : 7737 - 7743
  • [35] Carbon and hydrogen stable isotope fractionation of sulfamethoxazole during anaerobic transformation catalyzed by Desulfovibrio vulgaris Hildenborough
    Ouyang, Wei-Ying
    Kuemmel, Steffen
    Adrian, Lorenz
    Zhu, Yong-Guan
    Richnow, Hans H.
    CHEMOSPHERE, 2023, 311
  • [36] In-situ biodegradation of benzene and toluene in a contaminated aquifer monitored by stable isotope fractionation
    Vieth, A
    Kästner, M
    Schirmer, M
    Weiss, H
    Gödeke, S
    Richnow, HH
    Meckenstock, RU
    EUROPEAN SYMPOSIUM ON ENVIRONMENTAL BIOTECHNOLOGY, ESEB 2004, 2004, : 213 - 213
  • [37] In-situ biodegradation of tetrachloroethene and trichloroethene in contaminated aquifers monitored by stable isotope fractionation
    Vieth, A
    Müller, J
    Strauch, G
    Kästner, M
    Gehre, M
    Meckenstock, RU
    Richnow, HH
    ISOTOPES IN ENVIRONMENTAL AND HEALTH STUDIES, 2003, 39 (02) : 113 - 124
  • [38] Phase-specific stable isotope fractionation effects during combined gas-liquid phase exchange and biodegradation
    Khan, Ali M.
    Gharasoo, Mehdi
    Wick, Lukas Y.
    Thullner, Martin
    ENVIRONMENTAL POLLUTION, 2022, 309
  • [39] Substituent effects on nitrogen isotope fractionation during abiotic reduction of nitroaromatic compounds
    Hofstetter, Thomas B.
    Neumann, Anke
    Arnold, William A.
    Hartenbach, Akane E.
    Bolotin, Jakov
    Cramer, Christopher J.
    Schwarzenbach, Rene P.
    ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2008, 42 (06) : 1997 - 2003
  • [40] STABLE ISOTOPE FRACTIONATION DURING BENZENE SYNTHESIS FOR RADIOCARBON DATING
    PANARELLO, HO
    ALBERO, MC
    ANGIOLINI, FE
    RADIOCARBON, 1983, 25 (02) : 529 - 532