Superhydrophilicity and antibacterial property of a Cu-dotted oxide coating surface

<p>Abstract</p> <p>Background</p> <p>Aluminum-made settings are widely used in healthcare, schools, public facilities and transit systems. Frequently-touched surfaces of those settings are likely to harbour bacteria and be a potential source of infection. One method to...

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Main Authors: Nie Yining, Kalapos Carol, Nie Xueyuan, Murphy Monica, Hussein Riyad, Zhang Jing
Format: Article
Language:English
Published: BMC 2010-09-01
Series:Annals of Clinical Microbiology and Antimicrobials
Online Access:http://www.ann-clinmicrob.com/content/9/1/25
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spelling doaj-b29558b51e7549bebbe061501e3c24cf2020-11-24T22:02:57ZengBMCAnnals of Clinical Microbiology and Antimicrobials1476-07112010-09-01912510.1186/1476-0711-9-25Superhydrophilicity and antibacterial property of a Cu-dotted oxide coating surfaceNie YiningKalapos CarolNie XueyuanMurphy MonicaHussein RiyadZhang Jing<p>Abstract</p> <p>Background</p> <p>Aluminum-made settings are widely used in healthcare, schools, public facilities and transit systems. Frequently-touched surfaces of those settings are likely to harbour bacteria and be a potential source of infection. One method to utilize the effectiveness of copper (Cu) in eliminating pathogens for these surfaces would be to coat the aluminum (Al) items with a Cu coating. However, such a combination of Cu and Al metals is susceptible to galvanic corrosion because of their different electrochemical potentials.</p> <p>Methods</p> <p>In this work, a new approach was proposed in which electrolytic plasma oxidation (EPO) of Al was used to form an oxide surface layer followed by electroplating of Cu metal on the top of the oxide layer. The oxide was designed to function as a corrosion protective and biocompatible layer, and the Cu in the form of dots was utilized as an antibacterial material. The antibacterial property enhanced by superhydrophilicity of the Cu-dotted oxide coating was evaluated.</p> <p>Results</p> <p>A superhydrophilic surface was successfully prepared using electrolytic plasma oxidation of aluminum (Al) followed by electroplating of copper (Cu) in a Cu-dotted form. Both Cu plate and Cu-dotted oxide surfaces had excellent antimicrobial activities against <it>E. coli </it>ATCC 25922, methicillin-resistant <it>Staphylococcus aureus </it>(MRSA) ATCC 43300 and vancomycin-resistant <it>Enterococcus faecium </it>(VRE) ATCC 51299. However, its Cu-dotted surface morphology allowed the Cu-dotted oxide surface to be more antibacterial than the smooth Cu plate surface. The enhanced antibacterial property was attributed to the superhydrophilic behaviour of the Cu-dotted oxide surface that allowed the bacteria to have a more effective killing contact with Cu due to spreading of the bacterial suspension media.</p> <p>Conclusion</p> <p>The superhydrophilic Cu-dotted oxide coating surface provided an effective method of controlling bacterial growth and survival on contact surfaces and thus reduces the risk of infection and spread of bacteria-related diseases particularly in moist or wet environments.</p> http://www.ann-clinmicrob.com/content/9/1/25
collection DOAJ
language English
format Article
sources DOAJ
author Nie Yining
Kalapos Carol
Nie Xueyuan
Murphy Monica
Hussein Riyad
Zhang Jing
spellingShingle Nie Yining
Kalapos Carol
Nie Xueyuan
Murphy Monica
Hussein Riyad
Zhang Jing
Superhydrophilicity and antibacterial property of a Cu-dotted oxide coating surface
Annals of Clinical Microbiology and Antimicrobials
author_facet Nie Yining
Kalapos Carol
Nie Xueyuan
Murphy Monica
Hussein Riyad
Zhang Jing
author_sort Nie Yining
title Superhydrophilicity and antibacterial property of a Cu-dotted oxide coating surface
title_short Superhydrophilicity and antibacterial property of a Cu-dotted oxide coating surface
title_full Superhydrophilicity and antibacterial property of a Cu-dotted oxide coating surface
title_fullStr Superhydrophilicity and antibacterial property of a Cu-dotted oxide coating surface
title_full_unstemmed Superhydrophilicity and antibacterial property of a Cu-dotted oxide coating surface
title_sort superhydrophilicity and antibacterial property of a cu-dotted oxide coating surface
publisher BMC
series Annals of Clinical Microbiology and Antimicrobials
issn 1476-0711
publishDate 2010-09-01
description <p>Abstract</p> <p>Background</p> <p>Aluminum-made settings are widely used in healthcare, schools, public facilities and transit systems. Frequently-touched surfaces of those settings are likely to harbour bacteria and be a potential source of infection. One method to utilize the effectiveness of copper (Cu) in eliminating pathogens for these surfaces would be to coat the aluminum (Al) items with a Cu coating. However, such a combination of Cu and Al metals is susceptible to galvanic corrosion because of their different electrochemical potentials.</p> <p>Methods</p> <p>In this work, a new approach was proposed in which electrolytic plasma oxidation (EPO) of Al was used to form an oxide surface layer followed by electroplating of Cu metal on the top of the oxide layer. The oxide was designed to function as a corrosion protective and biocompatible layer, and the Cu in the form of dots was utilized as an antibacterial material. The antibacterial property enhanced by superhydrophilicity of the Cu-dotted oxide coating was evaluated.</p> <p>Results</p> <p>A superhydrophilic surface was successfully prepared using electrolytic plasma oxidation of aluminum (Al) followed by electroplating of copper (Cu) in a Cu-dotted form. Both Cu plate and Cu-dotted oxide surfaces had excellent antimicrobial activities against <it>E. coli </it>ATCC 25922, methicillin-resistant <it>Staphylococcus aureus </it>(MRSA) ATCC 43300 and vancomycin-resistant <it>Enterococcus faecium </it>(VRE) ATCC 51299. However, its Cu-dotted surface morphology allowed the Cu-dotted oxide surface to be more antibacterial than the smooth Cu plate surface. The enhanced antibacterial property was attributed to the superhydrophilic behaviour of the Cu-dotted oxide surface that allowed the bacteria to have a more effective killing contact with Cu due to spreading of the bacterial suspension media.</p> <p>Conclusion</p> <p>The superhydrophilic Cu-dotted oxide coating surface provided an effective method of controlling bacterial growth and survival on contact surfaces and thus reduces the risk of infection and spread of bacteria-related diseases particularly in moist or wet environments.</p>
url http://www.ann-clinmicrob.com/content/9/1/25
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