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Photochemical Reactivity of Humic Substances in an Aquatic System Revealed by Excitation-Emission Matrix Fluorescence

The photochemical reactivity of humic substances plays a critical role in the global carbon cycle, and influences the toxicity, mobility, and bioavailability of contaminants by altering their molecular structure and the mineralization of organic carbon to CO(2). Here, we examined the simulated irrad...

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Autores principales: Wang, Xin-yuan, Yang, Qi-peng, Tian, Shi-jie, Song, Fan-hao, Guo, Fei, Huang, Nan-nan, Tan, Wei-qiang, Bai, Ying-chen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8193985/
https://www.ncbi.nlm.nih.gov/pubmed/34124005
http://dx.doi.org/10.3389/fchem.2021.679286
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author Wang, Xin-yuan
Yang, Qi-peng
Tian, Shi-jie
Song, Fan-hao
Guo, Fei
Huang, Nan-nan
Tan, Wei-qiang
Bai, Ying-chen
author_facet Wang, Xin-yuan
Yang, Qi-peng
Tian, Shi-jie
Song, Fan-hao
Guo, Fei
Huang, Nan-nan
Tan, Wei-qiang
Bai, Ying-chen
author_sort Wang, Xin-yuan
collection PubMed
description The photochemical reactivity of humic substances plays a critical role in the global carbon cycle, and influences the toxicity, mobility, and bioavailability of contaminants by altering their molecular structure and the mineralization of organic carbon to CO(2). Here, we examined the simulated irradiation process of Chinese standard fulvic acid (FA) and humic acid (HA) by using excitation-emission matrix fluorescence combined with fluorescence regional integration (FRI), parallel factor (PARAFAC) analysis, and kinetic models. Humic-like and fulvic-like materials were the main materials (constituting more than 90%) of both FA and HA, according to the FRI analysis. Four components were identified by the PARAFAC analysis: fulvic-like components composed of both carboxylic-like and phenolic-like chromophores (C1), terrestrial humic-like components primarily composed of carboxylic-like chromophores (C2), microbial humic-like overwhelming composed of phenolic-like fluorophores (C3), and protein-like components (C4). After irradiation for 72 h, the maximum fluorescence intensity (F (max)) of C1 and C2 of FA was reduced to 36.01–58.34%, while the F (max) of C3 of both FA and HA also decreased to 0–9.63%. By contrast, for HA, the F (max) of its C1 and C2 increased to 236.18–294.77% when irradiated for 72 h due to greater aromaticity and photorefractive tendencies. The first-order kinetic model (R (2) = 0.908–0.990) fitted better than zero-order kinetic model (R (2) = 0–0.754) for the C1, C2, and C3, of both FA and HA, during their photochemical reactivity. The photodegradation rate constant (k (1)) of C1 had values (0.105 for FA; 0.154 for HA) that surpassed those of C2 (0.059 for FA, 0.079 for HA) and C3 (0.079 for both FA and HA) based on the first-order kinetic model. The half-life times of C1, C2, and C3 ranged from 6.61–11.77 h to 4.50–8.81 h for FA and HA, respectively. Combining an excitation-emission matrix with FRI and PARAFAC analyses is a powerful approach for elucidating changes to humic substances during their irradiation, which is helpful for predicting the environmental toxicity of contaminants in natural ecosystems.
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spelling pubmed-81939852021-06-12 Photochemical Reactivity of Humic Substances in an Aquatic System Revealed by Excitation-Emission Matrix Fluorescence Wang, Xin-yuan Yang, Qi-peng Tian, Shi-jie Song, Fan-hao Guo, Fei Huang, Nan-nan Tan, Wei-qiang Bai, Ying-chen Front Chem Chemistry The photochemical reactivity of humic substances plays a critical role in the global carbon cycle, and influences the toxicity, mobility, and bioavailability of contaminants by altering their molecular structure and the mineralization of organic carbon to CO(2). Here, we examined the simulated irradiation process of Chinese standard fulvic acid (FA) and humic acid (HA) by using excitation-emission matrix fluorescence combined with fluorescence regional integration (FRI), parallel factor (PARAFAC) analysis, and kinetic models. Humic-like and fulvic-like materials were the main materials (constituting more than 90%) of both FA and HA, according to the FRI analysis. Four components were identified by the PARAFAC analysis: fulvic-like components composed of both carboxylic-like and phenolic-like chromophores (C1), terrestrial humic-like components primarily composed of carboxylic-like chromophores (C2), microbial humic-like overwhelming composed of phenolic-like fluorophores (C3), and protein-like components (C4). After irradiation for 72 h, the maximum fluorescence intensity (F (max)) of C1 and C2 of FA was reduced to 36.01–58.34%, while the F (max) of C3 of both FA and HA also decreased to 0–9.63%. By contrast, for HA, the F (max) of its C1 and C2 increased to 236.18–294.77% when irradiated for 72 h due to greater aromaticity and photorefractive tendencies. The first-order kinetic model (R (2) = 0.908–0.990) fitted better than zero-order kinetic model (R (2) = 0–0.754) for the C1, C2, and C3, of both FA and HA, during their photochemical reactivity. The photodegradation rate constant (k (1)) of C1 had values (0.105 for FA; 0.154 for HA) that surpassed those of C2 (0.059 for FA, 0.079 for HA) and C3 (0.079 for both FA and HA) based on the first-order kinetic model. The half-life times of C1, C2, and C3 ranged from 6.61–11.77 h to 4.50–8.81 h for FA and HA, respectively. Combining an excitation-emission matrix with FRI and PARAFAC analyses is a powerful approach for elucidating changes to humic substances during their irradiation, which is helpful for predicting the environmental toxicity of contaminants in natural ecosystems. Frontiers Media S.A. 2021-05-28 /pmc/articles/PMC8193985/ /pubmed/34124005 http://dx.doi.org/10.3389/fchem.2021.679286 Text en Copyright © 2021 Wang, Yang, Tian, Song, Guo, Huang, Tan and Bai. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Chemistry
Wang, Xin-yuan
Yang, Qi-peng
Tian, Shi-jie
Song, Fan-hao
Guo, Fei
Huang, Nan-nan
Tan, Wei-qiang
Bai, Ying-chen
Photochemical Reactivity of Humic Substances in an Aquatic System Revealed by Excitation-Emission Matrix Fluorescence
title Photochemical Reactivity of Humic Substances in an Aquatic System Revealed by Excitation-Emission Matrix Fluorescence
title_full Photochemical Reactivity of Humic Substances in an Aquatic System Revealed by Excitation-Emission Matrix Fluorescence
title_fullStr Photochemical Reactivity of Humic Substances in an Aquatic System Revealed by Excitation-Emission Matrix Fluorescence
title_full_unstemmed Photochemical Reactivity of Humic Substances in an Aquatic System Revealed by Excitation-Emission Matrix Fluorescence
title_short Photochemical Reactivity of Humic Substances in an Aquatic System Revealed by Excitation-Emission Matrix Fluorescence
title_sort photochemical reactivity of humic substances in an aquatic system revealed by excitation-emission matrix fluorescence
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8193985/
https://www.ncbi.nlm.nih.gov/pubmed/34124005
http://dx.doi.org/10.3389/fchem.2021.679286
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