1. a School of Engineering University of Leicester
2. a School of Engineering University of Leicester Leicester UK
3. b Institute for Advanced Materials and Technology (IAMT) University of Science and Technology Beijing
4. c School of Materials Science Zhejiang University of Technology
5. d Ningbo Institute of Materials Technology and Engineering Chinese Academy of Science
6. e Micro Nano System Centre School of Information Science and Technology Fudan University
网络首发:2023-01-03,
纸质出版:2022
Scan QR Code
Ruoying Zhang, Yuting Zheng, Jinlong Liu, 等. Morphology-dependent antibacterial properties of diamond coatings[J]. Functional Diamond, 2022,2(1):204-214.
Ruoying Zhang, Yuting Zheng, Jinlong Liu, et al. Morphology-dependent antibacterial properties of diamond coatings[J]. Functional Diamond2022, 2(1): 204-214.
Ruoying Zhang, Yuting Zheng, Jinlong Liu, 等. Morphology-dependent antibacterial properties of diamond coatings[J]. Functional Diamond, 2022,2(1):204-214. DOI: 10.1080/26941112.2022.2157225.
Ruoying Zhang, Yuting Zheng, Jinlong Liu, et al. Morphology-dependent antibacterial properties of diamond coatings[J]. Functional Diamond2022, 2(1): 204-214. DOI: 10.1080/26941112.2022.2157225.
Microorganisms promoted corrosion has caused significant loss to marine engineering and the antibacterial coatings have served as a solution that has gained attention. In this study
the chemical vapour deposition technique has been employed to grow three different types of diamond coatings
namely
ultrananocrystalline diamond (UNCD)
nanocrystalline diamond (NCD)
and microcrystalline diamond (MCD) coatings. The evolution of associated surface morphology and the surface functional groups of the grown coatings have demonstrated antibacterial activity in seawater environments. It is found that different ratio of sp
3
/sp
2
carbon bonds on the diamond coatings influences their surface property (hydrophobic/hydrophilic)
which changes the anti-adhesion behaviour of diamond coatings against bacteria. This plays a critical role in determining the antibacterial property of the developed coatings. The results show that the diamond coatings arising from the deposition process kill the bacteria
via
a combination of the mechanical effects and the functional groups on the surface of UNCD
NCD
and MCD coatings
respectively. These antibacterial coatings are effective to both Gram-negat
ive bacteria (
E. coli
) and Gram-positive bacteria (
B. subtilis
) for 1–6 h of incubation time. When the contact duration is prolonged to 6 h or over
the MCD coatings begin to reduce the bacteria colonies drastically and enhance the bacteriostatic rate for both
E. coli and B. subtilis
.
Oh HG, Lee JY, Son HG, et al. Antibacterial mechanisms of nanocrystalline diamond film and graphene sheet. Results Phys. 2019;12:2129–2135. Web of Science ®Google Scholar
Morse SS. 2001. Factors in the emergence of infectious diseases. In: Price-Smith AT, editors. Plagues and politics. Global issues series. London: Palgrave Macmillan. Google Scholar
Zhu YB, Dong MP, Chang KK, et al. Prolonged anti-bacterial action by sluggish release of Ag from TiSiN/Ag multilayer coating. J. Alloys. Compd. 2019;783:164–172. Web of Science ®Google Scholar
Wu W, Zhao W, Wu Y, Zhou C, et al. Antibacterial behaviors of Cu2O particles with controllable morphologies in acrylic coatings. Appl. Surf. Sci. 2019;465:279–287. Web of Science ®Google Scholar
Biswas P, Bandyopadhyaya R. Synergistic antibacterial activity of a combination of silver and copper nanoparticle impregnated activated carbon for water disinfection. Environ. Sci.: Nano. 2017;4(12):2405–2417. Web of Science ®Google Scholar
Gutiérrez JM, Conceição K, Andrade VM, et al. High antibacterial properties of DLC film doped with nanodiamond. Surf. Coat. Tech. 2019;375:395–401. Web of Science ®Google Scholar
Marciano FR, Oliveira DAL, Silva NSD, et al. Antibacterial activity of fluorinated diamond-like carbon coatings produced by PECVD. Surf. Coat. Tech. 2010;204(18–19):2986–2990. Web of Science ®Google Scholar
Cumont A, Zhang R, Zheng Y, et al. Antibacterial properties of polycrystalline diamond films. Ceram. Int. 2021;47(23):32562–32569. Web of Science ®Google Scholar
Cumont A, Pitt A, Lambert PA, et al. Properties, mechanism and applications of diamond as an antibacterial material. Funct. Diamond. 2021;1(1):1–28. Google Scholar
Ren DW, Zhao Q, Bendavid A. Anti-bacterial property of Si and F doped diamond-like carbon coatings. Surf. Coat. Tech. 2013;226:1–6. Web of Science ®Google Scholar
Ye H, Su S. Impedance spectroscopy on Carbon-based materials for biological application, biological and biomedical coatings handbook: applications. CRC Press 2017. Google Scholar
Chen M, Pierstorff E, Lam R, et al. Nanodiamond-mediated delivery of water-insoluble therapeutics. ACS Nano. 2009;3(7):2016–2022. PubMed Web of Science ®Google Scholar
Granek A, Monika M, Ozimina D. Diamond-like carbon films for use in medical implants AIP Conf. Proc. 2018;2017;020006. Google Scholar
Wang T, Huang L, Liu Y, et al. Robust biomimetic hierarchical diamond architecture with a self-cleaning, antibacterial, and antibiofouling surface. ACS Appl. Mater. Interfaces. 2020;12(21):24432–24441. PubMed Web of Science ®Google Scholar
Stavis C, Clare T, Butler J, et al. Surface functionalization of thin-film diamond for highly stable and selective biological interfaces. Proc. Natl. Acad. Sci. U.S.A. 2010;108(3):983–988. PubMed Web of Science ®Google Scholar
Zheng Y, Li C, Liu J, et al. Diamond with nitrogen: states, control, and applications. Funct. Diamond. 2021;1(1):63–82. Google Scholar
Ye H, Sun C, Hing P, et al. Nucleation and growth dynamics of diamond films by microwave plasma enhanced chemical vapour deposition. Surf. Coat. Technol. 2000;123(2–3):129–133. Web of Science ®Google Scholar
Zheng Y, Cumont A, Bai M, et al. Smoothing of single crystal diamond by high-speed three-dimensional dynamic friction polishing: optimization and surface bonds evolution mechanism. Int. J. Refract. Met. Hard Mater. 2021;96:105472. Web of Science ®Google Scholar
Xu H, Ye H, Coathup D, et al. An insight of p-type to n-type conductivity conversion in oxygen ion-implanted ultrananocrystalline diamond films by impedance spectroscopy. Appl. Phys. Lett. 2017;110(3):033102. Web of Science ®Google Scholar
Lin Q, Chen S, Shen B, et al. CVD diamond coated drawing dies: a review. Mater. Manuf. Processes. 2021;36(4):381–408. Web of Science ®Google Scholar
Schrand AM, Hens SAC, Henderova OA. Nanodiamond particles: properties and perspectives for bioapplications. Crit. Rev. Solid State Mater. Sci. 2009;34(1–2):18–74. Web of Science ®Google Scholar
Zhang X, Lam R, Xu X, et al. Multimodal nanodiamond drug delivery carriers for selective targeting, imaging, and enhanced chemotherapeutic efficacy. Adv. Mater. 2011;23(41):4770–4775. PubMed Web of Science ®Google Scholar
Babchenko O, Kromka A, Hruska K, et al. Fabrication of nano-structured diamond coatings for SAOS-2 cell cultivation. Phys. Status Solidi A. 2009;206(9):2033–2037. Web of Science ®Google Scholar
Michels H, Noyce J, Keevil C. Effects of temperature and humidity on the efficacy of methicillin-resistant Staphylococcus aureus challenged antimicrobial materials containing silver and copper. Lett. Appl. Microbiol. 2009;49(2):191–195. PubMed Web of Science ®Google Scholar
Medina O, Nocua J, Mendoza F, et al. Bactericide and bacterial anti-adhesive properties of the nanocrystalline diamond surface. Diamond Relat. Mater. 2012;22:77–81. Web of Science ®Google Scholar
Tang S, Zheng J. Antibacterial activity of silver nanoparticles: structural effects. Adv. Healthcare Mater. 2018;7(13):1701503. Web of Science ®Google Scholar
Williams KM, Gokulan K, Cerniglia CE, et al. Size and dose dependent effects of silver nanoparticle exposure on intestinal permeability in an in vitro model of the human gut epithelium. J. Nanobiotechnol. 2016;14(1):62. PubMedGoogle Scholar
Shaikh S, Nazam N, Rizvi SM, et al. Mechanistic insights into the antimicrobial actions of metallic nanoparticles and their implications for multidrug resistance. IJMS. 2019;20(10):2468. Google Scholar
Qing Y, Cheng L, Li R, et al. Potential antibacterial mechanism of silver nanoparticles and the optimization of orthopedic implants by advanced modification technologies. IJN. 2018;13:3311–3327. volume Google Scholar
Díaz-Visurraga J, Gutiérrez C, Plessing CV, et al. Metal nanostructures as antibacterial agents. Sci. Microb. Pathog.: Commun. Curr. Res. Technol. Adv. 2011;1:210–218. Google Scholar
Kalbacova M, Kalbac M, Dunsch L, et al. The effect of SWCNT and nano-diamond films on human osteoblast cells. Phys. Status Solidi B. 2007;244(11):4356–4359. Google Scholar
Fong JS, Booth MA, Rifai A, et al. Diamond in the rough: toward improved materials for the bone–implant interface. Adv. Healthcare Mater. 2021;10(14):2100007. Web of Science ®Google Scholar
Dunseath O, Smith E, Al-Jeda T, et al. Studies of black diamond as an antibacterial surface for Gram negative bacteria: the interplay between chemical and mechanical bactericidal activity. Sci. Rep. 2019;9(1)):8815. PubMedGoogle Scholar
Wehling J, Dringen R, Zare RN, et al. Bactericidal activity of partially oxidized nanodiamonds. ACS Nano. 2014;8(6):6475–6483. PubMed Web of Science ®Google Scholar
May PW, Clegg M, Silva TA, et al. Diamond-coated ‘black silicon’ as a promising material for high-surface-area electrochemical electrodes and antibacterial surfaces. J. Mater. Chem. B. 2016;4(34):5737–5746. PubMed Web of Science ®Google Scholar
Marciano F, Bonetti L, Santos L, et al. Antibacterial activity of DLC and Ag–DLC coatings produced by PECVD technique. Diamond Relat. Mater. 2009;18(5–8):1010–1014. Web of Science ®Google Scholar
Merker D, Popova B, Bergfeldt T, et al. Antimicrobial propensity of ultrananocrystalline diamond coatings with embedded silver nanodroplets. Diamond Relat. Mater. 2019;93:168–178. Web of Science ®Google Scholar
Jelinek M, Voss A, Kocourek T, et al. Comparison of the surface properties of DLC and ultrananocrystalline diamond coatings with respect to their bio-applications. Phys. Status Solidi A. 2013;210(10):2106–2110. Web of Science ®Google Scholar
van der Mei H, Bos R, Busscher H. A reference guide to microbial cell surface hydrophobicity based on contact angles. Colloids Surf., B. 1998;11(4):213–221. Web of Science ®Google Scholar
Wang JL, Chen CK, Li X, et al. Influences of grain size and microstructure on optical properties of microcrystalline diamond films. Chin. Phys. B. 2020;29(1):018103. Web of Science ®Google Scholar
Jiang M, Chen C, Wang P, et al. Diamond formation mechanism in chemical vapor deposition. Proc. Natl. Acad. Sci. U.S.A. 2022;119(16):e2201451119. PubMed Web of Science ®Google Scholar
Liang X, Wang L, Zhu H, et al. Effect of pressure on nanocrystalline diamond coatings deposition by hot filament CVD technique from CH4/H2 gas mixture. Surf. Coat. Tech. 2007;202(2):261–267. Web of Science ®Google Scholar
Tan P, Hu C, Dong J, et al. Polarization properties, high-order Raman spectra, and frequency asymmetry between Stokes and anti-Stokes scattering of Raman modes in a graphite whisker. Phys. Rev. B. 2001;64(21):214301. Web of Science ®Google Scholar
Su S, Li J, Kundrat V, et al. Hydrogen-terminated detonation nanodiamond: an impedance spectroscopy study. Diamond Relat. Mater. 2012;24:49–53. Web of Science ®Google Scholar
Silviy AV, Stateva R, Reithmaier JP, et al. Patterning of the surface termination of ultrananocrystalline diamond coatings for guided cell attachment and growth. Surf. Coat. Tech. 2017;321:229–235. Web of Science ®Google Scholar
Ferreira NG, Abramof E, Corat EJ, et al. Residual stresses and crystalline quality of heavily boron-doped diamond films analysed by micro-Raman spectroscopy and X-ray diffraction. Carbon. 2003;41(6):1301–1308. Web of Science ®Google Scholar
Ray SC, Bose B, Chiou JW, et al. Deposition and characterization of diamond-like carbon thin films by electro-deposition technique using organic liquid. J. Mater. Res. 2004;19(4):1126–1132. Web of Science ®Google Scholar
Varga M, Izak T, Vretenar V, et al. Diamond/carbon nanotube composites: Raman, FTIR and XPS spectroscopic studies. Carbon. 2017;111:54–61. Web of Science ®Google Scholar
Duan X, Tian W, Zhang H, et al. SP2/sp3 framework from diamond nanocrystals: a key bridge of carbonaceous structure to carbocatalysis. ACS Catal. 2019;9(8):7494–7519. Web of Science ®Google Scholar
Wenzel RN. Resistance of solid surfaces to wetting by water. Ind. Eng. Chem. 1936;28(8):988–994. Google Scholar
Quéré D. Wetting and roughness. Annu. Rev. Mater. Res. 2008;38(1):71–99. Web of Science ®Google Scholar
An Y, Friedman R. Concise review of mechanisms of bacterial adhesion to biomaterial surfaces. J. Biomed. Mater. Res. 1998;43(3):338–348. PubMed Web of Science ®Google Scholar
Ferrari M, Benedetti A. Superhydrophobic surfaces for applications in seawater. Adv. Colloid Interface Sci. 2015;222:291–304. PubMed Web of Science ®Google Scholar
Chapman R, Ostuni E, Liang M, et al. Polymeric thin films that resist the adsorption of proteins and the adhesion of bacteria. Langmuir. 2001;17(4):1225–1233. Web of Science ®Google Scholar
Truong V, Lapovok R, Estrin Y, et al. The influence of nano-scale surface roughness on bacterial adhesion to ultrafine-grained titanium. Biomaterials. 2010;31(13):3674–3683. PubMed Web of Science ®Google Scholar
Ivanova E, Truong V, Wang J, et al. Impact of nanoscale roughness of titanium thin film surfaces on bacterial retention. Langmuir. 2010;26(3):1973–1982. PubMed Web of Science ®Google Scholar
Cui X, Liu X, Tatton AS, et al. Nanodiamond promotes surfactant-mediated triglyceride removal from a hydrophobic surface at or below room temperature. ACS Appl. Mater. Interfaces. 2012;4(6):3225–3232. PubMed Web of Science ®Google Scholar
Cumont A, Zhang R, Corscadden L, et al. Characterisation and antibacterial investigation of a novel coating consisting of mushroom microstructures and HFCVD graphite. Mater. Des. 2020;189:108498. Web of Science ®Google Scholar
Xia Y, Gao X, Li R. Influence of surface wettability on bubble formation and motion. Langmuir. 2021;37(49):14483–14490. PubMed Web of Science ®Google Scholar
Xu J, Ji M, Li L, et al. Improving wettability, antibacterial and tribological behaviors of zirconia ceramics through surface texturing. Ceram. Int. 2022;48(3):3702–3710. Web of Science ®Google Scholar
Gui L, Lin J, Liu J, et al. Difference and association of antibacterial and bacterial anti-adhesive performances between smart Ag/AgCl/TiO2 composite surfaces with switchable wettability. Chem. Eng. J. 2022;431:134103. Web of Science ®Google Scholar
Akhavan O, Azimirad R, Safa S. Functionalized carbon nanotubes in ZnO thin films for photoinactivation of bacteria. Mater. Chem. Phys. 2011;130(1–2):598–602. Web of Science ®Google Scholar
Qiu J, Wang D, Geng H, et al. How oxygen‐containing groups on graphene influence the antibacterial behaviors. Adv. Mater. Interface 2017;4(15):1700228. Web of Science ®Google Scholar
Yang KH, Riley P, Rodenhausen KB, et al. Antifungal behavior of silicon‐incorporated diamond‐like carbon by tuning surface hydrophobicity with plasma treatment. Int. J. Appl. Ceram. Tech. 2022;19(5):2545–2555. Web of Science ®Google Scholar
Beranová J, Seydlová G, Kozak H, et al. Sensitivity of bacteria to diamond nanoparticles of various size differs in Gram-positive and Gram-negative cells. FEMS Microbiol. Lett. 2014;351(2):179–186. PubMed Web of Science ®Google Scholar
Chang S, Chen X, Jiang S, et al. Using micro-patterned surfaces to inhibit settlement and biofilm formation by Bacillus subtilis. Can. J. Microbiol. 2017;63(7):608–620. PubMed Web of Science ®Google Scholar
0
浏览量
0
Downloads
关联资源
相关文章
相关作者
相关机构
京公网安备11010802024621