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  4. Iron-coated polymer films with high antibacterial activity under indoor and outdoor light, prepared by different facile pre-treatment and deposition methods
 
research article

Iron-coated polymer films with high antibacterial activity under indoor and outdoor light, prepared by different facile pre-treatment and deposition methods

Murillo, Laura Victoria Suarez  
•
Scharer, Ania
•
Giannakis, Stefanos  
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April 1, 2019
Applied Catalysis B-Environmental

In the present work, we study the fabrication of self-cleaning antibacterial surfaces, active under indoor or outdoor light. In order to obtain the highest activity with the lowest complexity we assess mild conditions of preparation (temperatures), pre-treatment (physical, chemical) and deposition method (dip coating, spraying). We report that the combination of deposition time and temperature during this phase on PET can lead to effective germicidal films (< 40 min under solar light) and pre-treatment with simple sandpaper scratching or acetone dissolution increase the inactivation kinetics more than 35%. Spray coating always led to higher germicidal efficiencies, due to the differentiated layering during deposition, reaching total inactivation under either indoor or solar light. Furthermore, the non-pretreated films were very robust over 10 re-uses and the pre-treated ones led to virtually no loss of antibacterial activity. Other materials such as polyurethane (PU) and LDPE were effectively used, with pre-treated PU reaching the fastest inactivation (< 30 min). Finally, the costly Fe reagent was effectively replaced with natural Fe oxides, which were equally efficient in pre-treated surfaces. In overall, compared to real world conditions, a very high microbial load was eliminated, in either indoor or outdoor environments, meeting the demands where the infection problems are high and the means are scarce.

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Type
research article
DOI
10.1016/j.apcatb.2018.10.035
Web of Science ID

WOS:000453616800017

Author(s)
Murillo, Laura Victoria Suarez  
Scharer, Ania
Giannakis, Stefanos  
Rtimi, Sami  
Pulgarin, Cesar  
Date Issued

2019-04-01

Publisher

ELSEVIER SCIENCE BV

Published in
Applied Catalysis B-Environmental
Volume

243

Start page

161

End page

174

Subjects

Chemistry, Physical

•

Engineering, Environmental

•

Engineering, Chemical

•

Chemistry

•

Engineering

•

antibacterial surfaces

•

polymer films

•

iron oxides

•

solar disinfection and photo-fenton

•

semiconductors

•

photocatalytic bacterial inactivation

•

gram-negative bacteria

•

escherichia-coli

•

disinfection

•

degradation

•

mechanism

•

kinetics

•

water

•

contamination

•

irradiation

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
GPAO  
Available on Infoscience
January 23, 2019
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/153934
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