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  4. Bacterial inactivation in sunlit surface waters is dominated by reactive species that emanate from the synergy between light, iron, and natural organic matter
 
research article

Bacterial inactivation in sunlit surface waters is dominated by reactive species that emanate from the synergy between light, iron, and natural organic matter

Wang, Da
•
Cai, Liwen
•
Song, Shuang
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December 5, 2023
Applied Catalysis B-Environment And Energy

In this study, the synergistic and antagonistic effects of Fe species and coexisting natural organic matter (NOM) on the efficacy of solar light disinfection of water are investigated. Different initial iron species (Fe2+/Fe3+) and naturalorganic matter types (Suwannee River-SRNOM, Nordic Reservoir NOM-NDNOM, SR Humic Acid-SRHA, and SR Fulvic Acid-SRFA) were selected. The bactericidal actions of Fe and NOM, alone or in conjunction, were evaluated at various initial iron dosing concentrations, NOM concentrations, irradiation intensities, and pH values. We show that when an appropriate iron (1 ppm Fe2+ or 0.25 ppm Fe3+) and NOM concentration (2 ppm SRNOM or 5 ppm NDNOM) coexisted, synergistic inactivation was observed in the pH range 5.0-8.0. A plausible explanation is that the presence of Fe+NOM significantly promoted the generation of hydroxyl radicals (center dot OH) and singlet oxygen (1O2), which led to enhanced disinfection rates. These results elucidate the previously understudied effects of ubiquitous elements in natural waters and their impact on solar-mediated bacterial inactivation.

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Type
research article
DOI
10.1016/j.apcatb.2023.123573
Web of Science ID

WOS:001134959500001

Author(s)
Wang, Da
Cai, Liwen
Song, Shuang
Giannakis, Stefanos
Ma, Jun
Vione, Davide
Pulgarin, Cesar  
Date Issued

2023-12-05

Publisher

Elsevier

Published in
Applied Catalysis B-Environment And Energy
Volume

343

Article Number

123573

Subjects

Physical Sciences

•

Technology

•

Solar Disinfection (Sodis)

•

Iron

•

Natural Organic Matter

•

Synergistic Effect

•

Reactive Oxygen Species

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
GPAO  
FunderGrant Number

National Natural Science Foundation of China

52000158

Agencia Estatal de Investigacion (Spain)

PCI2022-132918

Project CH4.0 under the MUR program "Dipartimenti di Eccellenza 2023 -2027"

CUP: D13C22003520001

Available on Infoscience
February 20, 2024
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/204869
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