Effect of dissolved organic matter fractions on photodegradation of phenanthrene in ice
• The photodegradation rate of PHE in ice was greater than that in water. • Quenching effect of DOM fraction was more important to inhibit PHE photodegradation. • 1O2 and OH contributed 9–31% and 2–13% to PHE photodegradation rate, respectively. • HPO-A was more efficient in advancing PHE photodegra...
Ausführliche Beschreibung
Autor*in: |
Xue, Shuang [verfasserIn] |
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Format: |
E-Artikel |
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Sprache: |
Englisch |
Erschienen: |
2019 |
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Schlagwörter: |
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Umfang: |
7 |
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Übergeordnetes Werk: |
Enthalten in: Summer bloom of - Moreira-González, Angel R. ELSEVIER, 2020, environmental control, risk assessment, impact and management, New York, NY [u.a.] |
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Übergeordnetes Werk: |
volume:361 ; year:2019 ; day:5 ; month:01 ; pages:30-36 ; extent:7 |
Links: |
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DOI / URN: |
10.1016/j.jhazmat.2018.08.072 |
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ELV044376162 |
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10.1016/j.jhazmat.2018.08.072 doi GBV00000000000390.pica (DE-627)ELV044376162 (ELSEVIER)S0304-3894(18)30759-3 DE-627 ger DE-627 rakwb eng 333.7 610 VZ 43.12 bkl 43.13 bkl 44.13 bkl Xue, Shuang verfasserin aut Effect of dissolved organic matter fractions on photodegradation of phenanthrene in ice 2019 7 nicht spezifiziert zzz rdacontent nicht spezifiziert z rdamedia nicht spezifiziert zu rdacarrier • The photodegradation rate of PHE in ice was greater than that in water. • Quenching effect of DOM fraction was more important to inhibit PHE photodegradation. • 1O2 and OH contributed 9–31% and 2–13% to PHE photodegradation rate, respectively. • HPO-A was more efficient in advancing PHE photodegradation through 1O2 mechanism. • For DOM fractions, Q′ λ well positively correlated with K doc and SUVA. Photodegradation Elsevier In ice Elsevier Phenanthrene Elsevier Quencing Elsevier Dissolved organic matter Elsevier Effect Elsevier Sun, Jijun oth Liu, Ying oth Zhang, Zhaohong oth Lin, Yingzi oth Liu, Qiang oth Enthalten in Science Direct Moreira-González, Angel R. ELSEVIER Summer bloom of 2020 environmental control, risk assessment, impact and management New York, NY [u.a.] (DE-627)ELV005292484 volume:361 year:2019 day:5 month:01 pages:30-36 extent:7 https://doi.org/10.1016/j.jhazmat.2018.08.072 Volltext GBV_USEFLAG_U GBV_ELV SYSFLAG_U SSG-OLC-PHA SSG-OPC-GGO 43.12 Umweltchemie VZ 43.13 Umwelttoxikologie VZ 44.13 Medizinische Ökologie VZ AR 361 2019 5 0105 30-36 7 |
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10.1016/j.jhazmat.2018.08.072 doi GBV00000000000390.pica (DE-627)ELV044376162 (ELSEVIER)S0304-3894(18)30759-3 DE-627 ger DE-627 rakwb eng 333.7 610 VZ 43.12 bkl 43.13 bkl 44.13 bkl Xue, Shuang verfasserin aut Effect of dissolved organic matter fractions on photodegradation of phenanthrene in ice 2019 7 nicht spezifiziert zzz rdacontent nicht spezifiziert z rdamedia nicht spezifiziert zu rdacarrier • The photodegradation rate of PHE in ice was greater than that in water. • Quenching effect of DOM fraction was more important to inhibit PHE photodegradation. • 1O2 and OH contributed 9–31% and 2–13% to PHE photodegradation rate, respectively. • HPO-A was more efficient in advancing PHE photodegradation through 1O2 mechanism. • For DOM fractions, Q′ λ well positively correlated with K doc and SUVA. Photodegradation Elsevier In ice Elsevier Phenanthrene Elsevier Quencing Elsevier Dissolved organic matter Elsevier Effect Elsevier Sun, Jijun oth Liu, Ying oth Zhang, Zhaohong oth Lin, Yingzi oth Liu, Qiang oth Enthalten in Science Direct Moreira-González, Angel R. ELSEVIER Summer bloom of 2020 environmental control, risk assessment, impact and management New York, NY [u.a.] (DE-627)ELV005292484 volume:361 year:2019 day:5 month:01 pages:30-36 extent:7 https://doi.org/10.1016/j.jhazmat.2018.08.072 Volltext GBV_USEFLAG_U GBV_ELV SYSFLAG_U SSG-OLC-PHA SSG-OPC-GGO 43.12 Umweltchemie VZ 43.13 Umwelttoxikologie VZ 44.13 Medizinische Ökologie VZ AR 361 2019 5 0105 30-36 7 |
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10.1016/j.jhazmat.2018.08.072 doi GBV00000000000390.pica (DE-627)ELV044376162 (ELSEVIER)S0304-3894(18)30759-3 DE-627 ger DE-627 rakwb eng 333.7 610 VZ 43.12 bkl 43.13 bkl 44.13 bkl Xue, Shuang verfasserin aut Effect of dissolved organic matter fractions on photodegradation of phenanthrene in ice 2019 7 nicht spezifiziert zzz rdacontent nicht spezifiziert z rdamedia nicht spezifiziert zu rdacarrier • The photodegradation rate of PHE in ice was greater than that in water. • Quenching effect of DOM fraction was more important to inhibit PHE photodegradation. • 1O2 and OH contributed 9–31% and 2–13% to PHE photodegradation rate, respectively. • HPO-A was more efficient in advancing PHE photodegradation through 1O2 mechanism. • For DOM fractions, Q′ λ well positively correlated with K doc and SUVA. Photodegradation Elsevier In ice Elsevier Phenanthrene Elsevier Quencing Elsevier Dissolved organic matter Elsevier Effect Elsevier Sun, Jijun oth Liu, Ying oth Zhang, Zhaohong oth Lin, Yingzi oth Liu, Qiang oth Enthalten in Science Direct Moreira-González, Angel R. ELSEVIER Summer bloom of 2020 environmental control, risk assessment, impact and management New York, NY [u.a.] (DE-627)ELV005292484 volume:361 year:2019 day:5 month:01 pages:30-36 extent:7 https://doi.org/10.1016/j.jhazmat.2018.08.072 Volltext GBV_USEFLAG_U GBV_ELV SYSFLAG_U SSG-OLC-PHA SSG-OPC-GGO 43.12 Umweltchemie VZ 43.13 Umwelttoxikologie VZ 44.13 Medizinische Ökologie VZ AR 361 2019 5 0105 30-36 7 |
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10.1016/j.jhazmat.2018.08.072 doi GBV00000000000390.pica (DE-627)ELV044376162 (ELSEVIER)S0304-3894(18)30759-3 DE-627 ger DE-627 rakwb eng 333.7 610 VZ 43.12 bkl 43.13 bkl 44.13 bkl Xue, Shuang verfasserin aut Effect of dissolved organic matter fractions on photodegradation of phenanthrene in ice 2019 7 nicht spezifiziert zzz rdacontent nicht spezifiziert z rdamedia nicht spezifiziert zu rdacarrier • The photodegradation rate of PHE in ice was greater than that in water. • Quenching effect of DOM fraction was more important to inhibit PHE photodegradation. • 1O2 and OH contributed 9–31% and 2–13% to PHE photodegradation rate, respectively. • HPO-A was more efficient in advancing PHE photodegradation through 1O2 mechanism. • For DOM fractions, Q′ λ well positively correlated with K doc and SUVA. Photodegradation Elsevier In ice Elsevier Phenanthrene Elsevier Quencing Elsevier Dissolved organic matter Elsevier Effect Elsevier Sun, Jijun oth Liu, Ying oth Zhang, Zhaohong oth Lin, Yingzi oth Liu, Qiang oth Enthalten in Science Direct Moreira-González, Angel R. ELSEVIER Summer bloom of 2020 environmental control, risk assessment, impact and management New York, NY [u.a.] (DE-627)ELV005292484 volume:361 year:2019 day:5 month:01 pages:30-36 extent:7 https://doi.org/10.1016/j.jhazmat.2018.08.072 Volltext GBV_USEFLAG_U GBV_ELV SYSFLAG_U SSG-OLC-PHA SSG-OPC-GGO 43.12 Umweltchemie VZ 43.13 Umwelttoxikologie VZ 44.13 Medizinische Ökologie VZ AR 361 2019 5 0105 30-36 7 |
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10.1016/j.jhazmat.2018.08.072 doi GBV00000000000390.pica (DE-627)ELV044376162 (ELSEVIER)S0304-3894(18)30759-3 DE-627 ger DE-627 rakwb eng 333.7 610 VZ 43.12 bkl 43.13 bkl 44.13 bkl Xue, Shuang verfasserin aut Effect of dissolved organic matter fractions on photodegradation of phenanthrene in ice 2019 7 nicht spezifiziert zzz rdacontent nicht spezifiziert z rdamedia nicht spezifiziert zu rdacarrier • The photodegradation rate of PHE in ice was greater than that in water. • Quenching effect of DOM fraction was more important to inhibit PHE photodegradation. • 1O2 and OH contributed 9–31% and 2–13% to PHE photodegradation rate, respectively. • HPO-A was more efficient in advancing PHE photodegradation through 1O2 mechanism. • For DOM fractions, Q′ λ well positively correlated with K doc and SUVA. Photodegradation Elsevier In ice Elsevier Phenanthrene Elsevier Quencing Elsevier Dissolved organic matter Elsevier Effect Elsevier Sun, Jijun oth Liu, Ying oth Zhang, Zhaohong oth Lin, Yingzi oth Liu, Qiang oth Enthalten in Science Direct Moreira-González, Angel R. ELSEVIER Summer bloom of 2020 environmental control, risk assessment, impact and management New York, NY [u.a.] (DE-627)ELV005292484 volume:361 year:2019 day:5 month:01 pages:30-36 extent:7 https://doi.org/10.1016/j.jhazmat.2018.08.072 Volltext GBV_USEFLAG_U GBV_ELV SYSFLAG_U SSG-OLC-PHA SSG-OPC-GGO 43.12 Umweltchemie VZ 43.13 Umwelttoxikologie VZ 44.13 Medizinische Ökologie VZ AR 361 2019 5 0105 30-36 7 |
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Effect of dissolved organic matter fractions on photodegradation of phenanthrene in ice |
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• The photodegradation rate of PHE in ice was greater than that in water. • Quenching effect of DOM fraction was more important to inhibit PHE photodegradation. • 1O2 and OH contributed 9–31% and 2–13% to PHE photodegradation rate, respectively. • HPO-A was more efficient in advancing PHE photodegradation through 1O2 mechanism. • For DOM fractions, Q′ λ well positively correlated with K doc and SUVA. |
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• The photodegradation rate of PHE in ice was greater than that in water. • Quenching effect of DOM fraction was more important to inhibit PHE photodegradation. • 1O2 and OH contributed 9–31% and 2–13% to PHE photodegradation rate, respectively. • HPO-A was more efficient in advancing PHE photodegradation through 1O2 mechanism. • For DOM fractions, Q′ λ well positively correlated with K doc and SUVA. |
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• The photodegradation rate of PHE in ice was greater than that in water. • Quenching effect of DOM fraction was more important to inhibit PHE photodegradation. • 1O2 and OH contributed 9–31% and 2–13% to PHE photodegradation rate, respectively. • HPO-A was more efficient in advancing PHE photodegradation through 1O2 mechanism. • For DOM fractions, Q′ λ well positively correlated with K doc and SUVA. |
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