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Role of surface energy and nano-roughness in the removal efficiency of bacterial contamination by nonwoven wipes from frequently touched surfaces

Authors :
Parikshit Goswami
Emma L. Best
Simon D. Connell
Mark H. Wilcox
Chris Carr
Stephen J. Russell
Nicholas W. M. Edwards
Source :
Science and Technology of Advanced Materials, Science and Technology of Advanced Materials, Vol 18, Iss 1, Pp 197-209 (2017)
Publication Year :
2017
Publisher :
National Institute for Materials Science (NIMS), 2017.

Abstract

Healthcare associated infections (HCAIs) are responsible for substantial patient morbidity, mortality and economic cost. Infection control strategies for reducing rates of transmission include the use of nonwoven wipes to remove pathogenic bacteria from frequently touched surfaces. Wiping is a dynamic process that involves physicochemical mechanisms to detach and transfer bacteria to fibre surfaces within the wipe. The purpose of this study was to determine the extent to which systematic changes in fibre surface energy and nano-roughness influence removal of bacteria from an abiotic polymer surface in dry wiping conditions, without liquid detergents or disinfectants. Nonwoven wipe substrates composed of two commonly used fibre types, lyocell (cellulosic) and polypropylene, with different surface energies and nano-roughnesses, were manufactured using pilot-scale nonwoven facilities to produce samples of comparable structure and dimensional properties. The surface energy and nano-roughness of some lyocell substrates were further adjusted by either oxygen (O2) or hexafluoroethane (C2F6) gas plasma treatment. Static adpression wiping of an inoculated surface under dry conditions produced removal efficiencies of between 9.4% and 15.7%, with no significant difference (p<br />Plasma modification of the nano-roughness and surface energy of fibres in nonwoven wipes was found to influence the relative removal efficiencies of common bacterial pathogens from model healthcare surfaces under dynamic wiping conditions.

Details

Language :
English
ISSN :
14686996
Database :
OpenAIRE
Journal :
Science and Technology of Advanced Materials, Science and Technology of Advanced Materials, Vol 18, Iss 1, Pp 197-209 (2017)
Accession number :
edsair.doi.dedup.....defa6ec74c536d10ce72c1468b20b11e