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Published in 2019 at "Chemosphere"
DOI: 10.1016/j.chemosphere.2019.01.127
Abstract: The degradation of triazine-containing pollutants including simazine, IrgarolĀ® 1051 and Reactive Brilliant Red K-2G (K-2G) by photocatalytic treatment was investigated. The effects of titanium dioxide (TiO2) concentration, initial pH of reaction mixture, irradiation time and…
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Keywords:
treatment;
containing pollutants;
triazine containing;
irgarol 1051 ... See more keywords
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Published in 2017 at "Marine pollution bulletin"
DOI: 10.1016/j.marpolbul.2017.05.027
Abstract: Colour change in Acropora tenuis, a representative species of Indo-Pacific hard coral, in response to low concentrations of Irgarol 1051 was examined in the laboratory. Branches of A. tenuis were exposed to 0, 1, and…
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Keywords:
hard coral;
irgarol 1051;
colour;
irgarol ... See more keywords
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Published in 2020 at "Marine pollution bulletin"
DOI: 10.1016/j.marpolbul.2019.110734
Abstract: The effects of ecologically relevant concentrations of Irgarol 1051, a representative PSII herbicide, on hermatypic corals were studied in the laboratory. The colour and chlorophyll fluorescence of Acropora tenuis were examined following exposure to around…
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Keywords:
ecologically relevant;
concentrations irgarol;
symbiotic dinoflagellates;
effects ecologically ... See more keywords
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Published in 2024 at "PLOS ONE"
DOI: 10.1371/journal.pone.0295686
Abstract: Phytoplankton face numerous pressures resulting from chemical and physical stressors, primarily induced by human activities. This study focuses on investigating the interactive effects of widely used antifouling agent Irgarol 1051 and UV radiation on the…
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Keywords:
temperature;
irgarol 1051;
irgarol;
marine diatoms ... See more keywords