Evaluation of Various Metallic Coatings on Steel to Mitigate Biofilm Formation
Abstract
:1. Introduction
2. Results and Discussion
2.1. Material surface phases
2.2. Antibacterial effects of some metals
2.3. Inhibition capability of biofilm formation
3. Experimental
3.1. Specimens
3.2. XRD measurement
3.3. Evaluation for biofilm formation and antibacterial effect
4. Conclusions
- At the beginning of biofilm formation (within 24 hours), plated steel by tin, silver, copper, zinc and cobalt showed high inhibition capability against the formation of biofilms. Stainless steels also showed high inhibition capability. Even though the alloy film of tin and silver also shows higher inhibition capability, the extent for the alloy film became smaller than that of these single elements.
- The inhibition capability against biofilm formation decreased with the increase of immersion time to some extent. The extent differed from specimen to specimen.
- The antibacterial effects were not recognized remarkably for all specimens, except for cobalt and zinc plated specimens within 24 hours. The antibacterial effects did not have any direct correlation with the inhibition capability against the biofilm formation.
- It would appear that the inhibition capability against the biofilm formation depended on the material factors affecting the attachment of bacteria onto them at the beginning stage.
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time (s) | specimen | E. coli ATCC25922 |
---|---|---|
0 | control | 9.50 × 104/polystyrene plate |
86.4×103 | control | 2.04 × 106/polystyrene plate |
tin plated steel (specimen c) | 7.51 × 105/metal plate |
symbol | contents |
---|---|
a | control (without spec.) |
b | carbon steel (JIS SS400) |
c | tin plated steel (film thickness 10 micrometer) |
d | silver plated steel |
e | tin-silver alloy specimen (without heat treatment) |
f | tin-silver alloy specimen heat treated in 473 K for 10.8 ks |
g | stainless steel (JIS SUS304) |
h | copper plated specimen |
i | zinc plated specimen |
j | cobalt plated specimen |
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Kanematsu, H.; Ikigai, H.; Yoshitake, M. Evaluation of Various Metallic Coatings on Steel to Mitigate Biofilm Formation. Int. J. Mol. Sci. 2009, 10, 559-571. https://doi.org/10.3390/ijms10020559
Kanematsu H, Ikigai H, Yoshitake M. Evaluation of Various Metallic Coatings on Steel to Mitigate Biofilm Formation. International Journal of Molecular Sciences. 2009; 10(2):559-571. https://doi.org/10.3390/ijms10020559
Chicago/Turabian StyleKanematsu, Hideyuki, Hajime Ikigai, and Michiko Yoshitake. 2009. "Evaluation of Various Metallic Coatings on Steel to Mitigate Biofilm Formation" International Journal of Molecular Sciences 10, no. 2: 559-571. https://doi.org/10.3390/ijms10020559
APA StyleKanematsu, H., Ikigai, H., & Yoshitake, M. (2009). Evaluation of Various Metallic Coatings on Steel to Mitigate Biofilm Formation. International Journal of Molecular Sciences, 10(2), 559-571. https://doi.org/10.3390/ijms10020559