Mechanism of Synergistic Effect of pH and Dissolved Organic Matter in Water on Photochemical Transformation Kinetics of Antibiotics

Photochemical transformation is the main way to eliminate antibiotic emerging contaminants in aquatic environments. pH and dissolved organic matter (DOM) are important for photochemical transformation of antibiotics in water, yet their synergistic mechanism remains unclear. Norfloxacin (NOR) and cip...

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Published in:Yankuang ceshi
Main Authors: Fei LI, Yue CHEN, Guoyan ZHOU, Fangyuan CHENG, Shuhai SUN, Jiao QU, Yanan ZHANG
Format: Article
Language:English
Published: Science Press, PR China 2025-07-01
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Online Access:http://www.ykcs.ac.cn/article/doi/10.15898/j.ykcs.202502100018
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author Fei LI
Yue CHEN
Guoyan ZHOU
Fangyuan CHENG
Shuhai SUN
Jiao QU
Yanan ZHANG
author_facet Fei LI
Yue CHEN
Guoyan ZHOU
Fangyuan CHENG
Shuhai SUN
Jiao QU
Yanan ZHANG
author_sort Fei LI
collection DOAJ
container_title Yankuang ceshi
description Photochemical transformation is the main way to eliminate antibiotic emerging contaminants in aquatic environments. pH and dissolved organic matter (DOM) are important for photochemical transformation of antibiotics in water, yet their synergistic mechanism remains unclear. Norfloxacin (NOR) and ciprofloxacin (CIP) were taken as the representatives of antibiotics, while Suwannee River Natural Organic Matter (SRNOM) and DOM (S-DOM) extracted from Songhua River served as representatives of DOM. Through photochemical simulation experiments under simulated sunlight irradiation and high performance liquid chromatography, the synergistic effect of pH and DOM on the photochemical transformation kinetics of antibiotics was studied, and the molecular mechanism was elucidated by exploring how different pH values influenced quantum yields of excited triplet state (3DOM*), singlet oxygen (1O2), and hydroxyl radicals (•OH) generated by photosensitization of DOM and its small molecule analogues. As a result, the apparent photolysis rate constant (kobs) of NOR at pH=9.0 was 0.39min−1, which is 7.80 and 2.17 times higher than at pH=5.0 (kobs=0.05min−1) and pH=7.0 (kobs=0.18min−1), respectively. For CIP, the kobs at pH=9.0 (kobs=0.43min−1) is 8.60 and 2.15 times higher than that at pH=5.0 (kobs=0.05min−1) and pH=7.0 (kobs=0.20min−1), respectively. Therefore, pH, which influences occurrence forms of NOR and CIP, directly affects their photochemical transformation, and that of the two antibiotics is the fastest in the form of zwitterion (pH=9.0), consistent with previous results. The kobs of antibiotics mediated by DOM at pH=9.0 is 7.20–14.00 and 1.87–2.25 times higher than that at pH=5.0 and pH=7.0, respectively. 1O2 and •OH play the most significant role in promoting the photochemical transformation of antibiotics, with a contribution rate of 36.50% and 12.58% respectively, while the contribution of photochemically produced reactive intermediates (PPRIs) decreases as pH increases, with a contribution rate of 29.17% at pH=5.0, and 16.00% at pH=7.0. The photophysical properties (e.g., E2/E3) and functional groups (e.g., phenolic groups) can affect quantum yields of PPRIs, and pH, by influencing the dissociation degree of DOM dissociable components and the redox active functional groups of DOM non-dissociable components, changes quantum yields and indirectly impacts the photochemical transformation of antibiotics. In conclusion, the photochemical transformation of antibiotics is pH dependent, and DOM promotes the photochemical transformation of antibiotics by generating PPRIs through photosensitization. The BRIEF REPORT is available for this paper at http://www.ykcs.ac.cn/en/article/doi/10.15898/j.ykcs.202502100018.
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spelling doaj-art-b4d7cbf31e7542269db024157ca035cc2025-09-15T03:25:28ZengScience Press, PR ChinaYankuang ceshi0254-53572025-07-0144468169410.15898/j.ykcs.202502100018yk202502100018Mechanism of Synergistic Effect of pH and Dissolved Organic Matter in Water on Photochemical Transformation Kinetics of AntibioticsFei LI0Yue CHEN1Guoyan ZHOU2Fangyuan CHENG3Shuhai SUN4Jiao QU5Yanan ZHANG6School of Environment, Northeast Normal University, Changchun 130117, ChinaSchool of Environment, Northeast Normal University, Changchun 130117, ChinaSchool of Environment, Northeast Normal University, Changchun 130117, ChinaSchool of Environment, Northeast Normal University, Changchun 130117, ChinaSchool of Water Conservancy & Environment Engineering, Changchun Institute of Technology, Changchun 130012, ChinaSchool of Environment, Northeast Normal University, Changchun 130117, ChinaSchool of Environment, Northeast Normal University, Changchun 130117, ChinaPhotochemical transformation is the main way to eliminate antibiotic emerging contaminants in aquatic environments. pH and dissolved organic matter (DOM) are important for photochemical transformation of antibiotics in water, yet their synergistic mechanism remains unclear. Norfloxacin (NOR) and ciprofloxacin (CIP) were taken as the representatives of antibiotics, while Suwannee River Natural Organic Matter (SRNOM) and DOM (S-DOM) extracted from Songhua River served as representatives of DOM. Through photochemical simulation experiments under simulated sunlight irradiation and high performance liquid chromatography, the synergistic effect of pH and DOM on the photochemical transformation kinetics of antibiotics was studied, and the molecular mechanism was elucidated by exploring how different pH values influenced quantum yields of excited triplet state (3DOM*), singlet oxygen (1O2), and hydroxyl radicals (•OH) generated by photosensitization of DOM and its small molecule analogues. As a result, the apparent photolysis rate constant (kobs) of NOR at pH=9.0 was 0.39min−1, which is 7.80 and 2.17 times higher than at pH=5.0 (kobs=0.05min−1) and pH=7.0 (kobs=0.18min−1), respectively. For CIP, the kobs at pH=9.0 (kobs=0.43min−1) is 8.60 and 2.15 times higher than that at pH=5.0 (kobs=0.05min−1) and pH=7.0 (kobs=0.20min−1), respectively. Therefore, pH, which influences occurrence forms of NOR and CIP, directly affects their photochemical transformation, and that of the two antibiotics is the fastest in the form of zwitterion (pH=9.0), consistent with previous results. The kobs of antibiotics mediated by DOM at pH=9.0 is 7.20–14.00 and 1.87–2.25 times higher than that at pH=5.0 and pH=7.0, respectively. 1O2 and •OH play the most significant role in promoting the photochemical transformation of antibiotics, with a contribution rate of 36.50% and 12.58% respectively, while the contribution of photochemically produced reactive intermediates (PPRIs) decreases as pH increases, with a contribution rate of 29.17% at pH=5.0, and 16.00% at pH=7.0. The photophysical properties (e.g., E2/E3) and functional groups (e.g., phenolic groups) can affect quantum yields of PPRIs, and pH, by influencing the dissociation degree of DOM dissociable components and the redox active functional groups of DOM non-dissociable components, changes quantum yields and indirectly impacts the photochemical transformation of antibiotics. In conclusion, the photochemical transformation of antibiotics is pH dependent, and DOM promotes the photochemical transformation of antibiotics by generating PPRIs through photosensitization. The BRIEF REPORT is available for this paper at http://www.ykcs.ac.cn/en/article/doi/10.15898/j.ykcs.202502100018.http://www.ykcs.ac.cn/article/doi/10.15898/j.ykcs.202502100018phdomantibioticphotochemical transformationhigh performance liquid chromatography
spellingShingle Fei LI
Yue CHEN
Guoyan ZHOU
Fangyuan CHENG
Shuhai SUN
Jiao QU
Yanan ZHANG
Mechanism of Synergistic Effect of pH and Dissolved Organic Matter in Water on Photochemical Transformation Kinetics of Antibiotics
ph
dom
antibiotic
photochemical transformation
high performance liquid chromatography
title Mechanism of Synergistic Effect of pH and Dissolved Organic Matter in Water on Photochemical Transformation Kinetics of Antibiotics
title_full Mechanism of Synergistic Effect of pH and Dissolved Organic Matter in Water on Photochemical Transformation Kinetics of Antibiotics
title_fullStr Mechanism of Synergistic Effect of pH and Dissolved Organic Matter in Water on Photochemical Transformation Kinetics of Antibiotics
title_full_unstemmed Mechanism of Synergistic Effect of pH and Dissolved Organic Matter in Water on Photochemical Transformation Kinetics of Antibiotics
title_short Mechanism of Synergistic Effect of pH and Dissolved Organic Matter in Water on Photochemical Transformation Kinetics of Antibiotics
title_sort mechanism of synergistic effect of ph and dissolved organic matter in water on photochemical transformation kinetics of antibiotics
topic ph
dom
antibiotic
photochemical transformation
high performance liquid chromatography
url http://www.ykcs.ac.cn/article/doi/10.15898/j.ykcs.202502100018
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