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  4. Role of microbial cell properties on bacterial pathogen and coliphage removal in biochar-modified stormwater biofilters
 
research article

Role of microbial cell properties on bacterial pathogen and coliphage removal in biochar-modified stormwater biofilters

Afrooz, A. R. M. Nabiul
•
Pitol, Ana K.
•
Kitt, Dianna
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December 1, 2018
Environmental Science-Water Research & Technology

Stormwater biofilters are distributed stormwater control measures for managing urban runoff. Recent work has shown that adding biochar to biofilters can reduce stormwater contaminant concentrations, including fecal indicator bacteria (FIB). However, the potential of biochar-augmented biofilters to remove human pathogens from stormwater has not been investigated. In this study, we investigated the removal of bacterial pathogens Salmonella enterica serovar Typhimurium and Staphylococcus aureus, as well as bacterial and viral indicators Escherichia coli and MS2 coliphage in laboratory-scale biochar-amended biofilters. Biochar-amended biofilters performed better than sand biofilters in removing the microorganisms from stormwater and removal of pathogenic bacteria was greater than that of FIB. Biochar-augmented biofilters provided up to 3.9, 1.9, and 1.8log(10) removal for pathogenic bacteria, E. coli, and MS2, respectively. We utilized colloid filtration theory to elucidate potential microbial removal mechanisms. In biochar-amended biofilters, electrostatic interactions between the virus and collector surfaces likely controlled bacteriophage removal whereas the electrostatic interactions likely played a minor role in bacterial removal. Bacterial removal in biochar-augmented biofilters was likely controlled by straining and hydrophobic interactions. The findings of this study inform the design of geomedia-amended biofilters to reduce stormwater-derived microbial contamination in receiving waters.

  • Details
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Type
research article
DOI
10.1039/c8ew00297e
Web of Science ID

WOS:000451072500025

Author(s)
Afrooz, A. R. M. Nabiul
Pitol, Ana K.
Kitt, Dianna
Boehm, Alexandria B.
Date Issued

2018-12-01

Published in
Environmental Science-Water Research & Technology
Volume

4

Issue

12

Start page

2160

End page

2169

Subjects

Engineering, Environmental

•

Environmental Sciences

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Water Resources

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Engineering

•

Environmental Sciences & Ecology

•

escherichia-coli removal

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bed filtration theory

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porous-media

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transport

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deposition

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attachment

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retention

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minimum

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viruses

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LEV  
Available on Infoscience
December 13, 2018
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/152691
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