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Abstract
Biomedical materials must meet increasingly stringent standards for antibacterial efficacy and corrosion resis- tance. This study investigates the enhancement of these properties in 316 L stainless steel through the application of fluorine-doped diamond-like carbon (F-DLC) coatings. A series of F-DLC coatings with varying fluorine (F) concentrations were fabricated using plasma-enhanced chemical vapour deposition (PECVD). Fluorine doping increased the sp2/sp3 ratio (0.65–0.93) and enhanced surface hydrophobicity, as indicated by an increase in the contact angle from 63.1◦ to 79.7◦. The impact of F concentration on bacterial adhesion was investigated using Escherichia coli (E. coli) and Staphylococcus aureus (S. aureus). DLC coatings with higher F concentrations and sp2/ sp3 ratios exhibited a notable reduction in bacterial adhesion - up to 74 % for E. coli and 77 % for S. aureus - compared to uncoated stainless steel. The extended Derjaguin-Landau-Verwey-Overbeek (XDLVO) theory was employed to model bacteria-surface interactions, revealing the role of F in bacterial adhesion behaviour. Furthermore, the F-DLC coatings achieved a significant corrosion inhibition rate of 98.3 % in Hanks’ balanced salt solution at 37 ◦C. Overall, higher F concentrations in the DLC coatings promote antibacterial and anti- corrosion performance by shifting the carbon structure from a three-dimensional sp3-dominated configuration to a two-dimensional sp2-rich structure.
Original language | English |
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Article number | 114666 |
Number of pages | 13 |
Journal | Colloids and Surfaces B: Biointerfaces |
Volume | 252 |
Early online date | 1 Apr 2025 |
DOIs | |
Publication status | Published - Apr 2025 |
Keywords
- Diamond-like carbon coatings Biomedical applications Antibacterial surface Bacterial adhesion Corrosion resistance
- biomedical applications
- Antibacterial surface
- bacterial adhesion
- Corrosion resistance
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Dive into the research topics of 'Enhanced antibacterial and corrosion resistance performance of fluorine-doped diamond-like carbon coatings on 316 L stainless steel'. Together they form a unique fingerprint.Projects
- 2 Finished
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Laser-Engineered Nanocomposites for Sensing Applications
Zolotovskaya, S. A. (Investigator)
Engineering and Physical Sciences Research Council
1/05/18 → 30/09/19
Project: Research
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Influence of Surface Properties of New Biomaterials for Catheters on Bacterial Adhesion Urine
Campbell, P. (Investigator), Corner, G. (Investigator), Davidson, F. (Investigator), Keatch, R. (Investigator), Nabi, G. (Investigator), Vorstius, J. B. (Investigator), Wilcox, K. (Investigator) & Zhao, Q. (Investigator)
Engineering and Physical Sciences Research Council
1/12/16 → 31/10/21
Project: Research