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  4. New evidence for TiO2 uniform surfaces leading to complete bacterial reduction in the dark: Critical issues
 
research article

New evidence for TiO2 uniform surfaces leading to complete bacterial reduction in the dark: Critical issues

Nesic, Jelena
•
Rtimi, Sami  
•
Laub, Daniele
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2014
Colloids And Surfaces B-Biointerfaces

This study presents new evidence for the events leading to Escherichia coil reduction in the absence of light irradiation on TiO2-polyester (from now on TiO2-PES. By transmission electron microscopy (TEM) the diffusion of TiO2 NP's aggregates with the E. coil outer lipo-polyssacharide (LPS) layer is shown to be a prerequisite for the loss of bacterial cultivability. Within 30 min in the dark the TiO2 aggregates interact with E. coil cell wall leading within 120 min to the complete loss of bacterial cultivability on a TiO2-PES 5% TiO2 sample. The bacterial reduction was observed to increase with a higher TiO2 loading on the PES up to 5%. Bacterial disinfection on TiO2-PES in the dark was slower compared to the runs under low intensity simulated sunlight light irradiation. The interaction between the TiO2 aggregates and the E. coil cell wall is discussed in terms of the competition between the TiO2 units collapsing to form TiO2-aggregates at a physiologic pH-value followed by the electrostatic interaction with the bacteria surface. TiO2-PES samples were able to carry repetitive bacterial inactivation. This presents a potential for practical applications. X-ray photoelectron spectroscopy (XPS) evidence was found for the reduction of Ti4+ to Ti3+ contributing to redox interactions between TiO2-PES and the bacterial cell wall. Insight is provided into the mechanism of interaction between the E. coil cell wall and TiO2 NP's. The properties of the TiO2-PES surface like percentage atomic concentration, TiO2-loading, optical absorption, surface charge and crystallographic phases are reported in this study. (C) 2014 Elsevier B.V. All rights reserved.

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Type
research article
DOI
10.1016/j.colsurfb.2014.09.060
Web of Science ID

WOS:000347580500072

Author(s)
Nesic, Jelena
Rtimi, Sami  
Laub, Daniele
Roglic, Goran M.
Pulgarin, Cesar  
Kiwi, John
Date Issued

2014

Publisher

Elsevier Science Bv

Published in
Colloids And Surfaces B-Biointerfaces
Volume

123

Start page

593

End page

599

Subjects

Colloidal TiO2

•

E. coli

•

Dark run

•

Aggregation/co-aggregation

•

Interface charge transfer

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
GPAO  
Available on Infoscience
February 20, 2015
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/111622
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