Keywords
radio frequency, Archwires, ion release, Wettability, antibacterial
Document Type
Research Paper
Abstract
This study investigates the effect of Ag–PTFE nanocomposite coatings, prepared by radio frequency (RF) sputtering, on the surface and antimicrobial properties of orthodontic stainless steel archwires (SSW). The novelty lies in combining silver (Ag) and polytetrafluoroethylene (PTFE) nanoparticles into one coating, which has not been widely applied to orthodontics. The motivation is the need to reduce microbial adhesion and biofilm on archwires, which contribute to enamel demineralization, gingival disease, and infections. The problem addressed is the lack of coatings that can simultaneously provide enhanced surface properties, facilitate controlled silver ion release, and deliver durable antibacterial performance. Unlike literature that mainly studied Ag or polymer coatings separately, this work fills the gap by varying Ag and PTFE weight percentages and assessing their combined effects on wettability, roughness, ion release, and antimicrobial activity. Austenitic 316L stainless steel archwires (0.4 mm in diameter and 160 mm in length) were coated using Ag and PTFE nanopowders (30 nm). The coated SSW was characterized using field emission scanning electron microscopy (FESEM), X-ray diffraction (XRD), and contact angle measurements, while silver ion release was analyzed by atomic absorption spectroscopy. Antimicrobial efficacy was tested against Streptococcus mutans and Staphylococcus aureus. The results showed uniform coatings with distinct hydrophobic behavior and antibacterial activity. Increasing Ag content enhanced silver ion release and inhibition zones, while higher PTFE content increased hydrophobicity, reducing bacterial adhesion. These findings highlight Ag–PTFE coatings as a synergistic strategy to improve surface properties and suppress microbial colonization, suggesting potential benefits in preventing caries and periodontal complications.
References
Y. C. Abdulkader, A. F. Kamaruddin and R. B. Mydin, Effects of salivary pH on coating durability of two different aesthetic archwire coatings under a simulated intraoral environment, Saudi Dent. J., 32 (2020) 306–313. https://doi.org/10.1016/j.sdentj.2019.09.010 M. K. Eltayeb, Y. E. Ibrahim, I. A. El Karim and N. M. Sanhouri, Distribution of white spot lesions among orthodontic patients attending teaching institutes in Khartoum, BMC Oral Health, 17 (2017) 88. https://doi.org/10.1186/s12903-017-0380-7. N. Sagarika, S. Suchindran, S. Loganathan and V. Gopikrishna, Prevalence of white spot lesion in a section of Indian population undergoing fixed orthodontic treatment: An in vivo assessment using the visual International Caries Detection and Assessment System II criteria J. Conserv. Dent., 15 (2012) 104-108. https://doi.org/10.4103/0972-0707.94572. A. Lucchese and E. Gherlone, Prevalence of white-spot lesions before and during orthodontic treatment with fixed appliances, Eur. J. Orthod., 35 (2013) 664-668. https://doi.org/10.1093/ejo/cjs070. Z. M. Al-Fadhily and M. A. Abdul-Hadi, Novel Coating of Orthodontic Archwires with Chlorhexidine Hexametaphosphate Nanoparticles, Int. J. Biomater., (2023) 9981603. https://doi.org/10.1155/2023/9981603. I. Chen, J. Chung, R. Vella, C. M. Weinstock, Y. Zhou and A.H. Jheon, Alterations in subgingival microbiota during full-fixed appliance orthodontic treatment-A prospective study, Orthod. Craniofac. Res., 25 (2022) 260-268. https://doi.org/10.1111/ocr.12534. H. H. Goh and B. Doubleday, Aids for mechanical cleaning of teeth with fixed braces, Cochrane Database of Systematic Reviews, 1 (2018). https://doi.org/10.1002/14651858.CD012931. J. A. Cury and L. M. Tenuta, Evidence-based recommendation on toothpaste use, Braz. Oral Res., 28 (2014) 1-7. https://doi.org/10.1590/S1806-83242014.50000001. T.S. Al-Jewair TS, S. Suri and B.D. Tompson, Predictors of adolescent compliance with oral hygiene instructions during two-arch multibracket fixed orthodontic treatment, Angle Orthod., 81 (2011) 525-531. https://doi.org/10.2319/092010-547.1. J. Song, H. Liu, M. Lei, H. Tan, Z. Chen, A. Antoshin, G.F. Payne, X. Qu and C., Redox-Channeling Polydopamine-Ferrocene (PDA-Fc) Coating to Confer Context-Dependent and Photothermal Antimicrobial Activities, ACS Appl. Mater. Interfaces., 12 (2020) 8915-8928. https://doi.org/10.1021/acsami.9b22339. D. Mitra, E. T. Kang and K. G. Neoh, Antimicrobial Copper-Based Materials and Coatings: Potential Multifaceted Biomedical Applications, ACS Appl. Mater. Interfaces., 12 (2020) 21159-21182. https://doi.org/10.1021/acsami.9b17815. S. Zhang, L. Wang, X. Liang, J. Vorstius, R. Keatch, G. Corner, G. Nabi, F. Davidson G.M. Gadd and Q. Zhao, Enhanced Antibacterial and Antiadhesive Activities of Silver-PTFE Nanocomposite Coating for Urinary Catheters, ACS Biomater. Sci. Eng., 5 (2019) 2804-2814. https://doi.org/10.1021/acsbiomaterials.9b00071. A. Panáček, L. Kvítek, M. Smékalová, R. Večeřová, M. Kolář, M. Röderová, F. Dyčka, M. Šebela, R. Prucek, O. Tomanec and R. Zbořil, Bacterial resistance to silver nanoparticles and how to overcome it, Nat. Nanotechnol., 13 (2018) 65-71. https://doi.org/10.1038/s41565-017-0013-y. H. A. Alaloosi, F. T. M. Noori, and A. K. Jidran, The Fundamental of Reduced Graphene Oxide with Nanosilver Composite Films Using the Spin Coating Technique, Eng. Technol. J., 40 (2022) 1023- 1028. http://doi.org/10.30684/etj.v40i8.2205. R. H. Abbasa, A. M. Haleem and A. K. Judran, Fabrication of Silver Nanoparticles in Aqueous Solution by Laser Technique and Study of Their Hemocompatibility and Antibacterial Effects Against Dental Decay Bacteria, Eng. Technol. J., 41 (2023) 543-552. http://doi.org/10.30684/etj.2023.136922.1329. Tabatabaei, F. S., Torres, R. and Tayebi, L. Biomedical Materials in Dentistry: Applications of Biomedical Engineering in Dentistry; Springer, 2020. https://doi.org/10.1007/978-3-030-21583-5_2. J. Siegel, M. Polívková, N. S. Kasálková, Z. Kolská and V. Svorčík, Properties of silver nanostructure-coated PTFE and its biocompatibility, Nanoscale Res. Lett., 8 (2013) 388. https://doi.org/10.1186/1556-276X-8-388. H. Qian, M. Li, Z. Li, Y. Lou, L. Huang, D. Zhang, D. Xu, C. Du, L. Lu and J. Gao, Mussel-inspired superhydrophobic surfaces with enhanced corrosion resistance and dual-action antibacterial properties, Mater. Sci. Eng. C Mater. Biol. Appl., 80 (2017) 566-577. https://doi.org/10.1016/j.msec.2017.07.002. T. Kameda, H. Sato, S. Oka, A. Miyazaki, K. Ohkuma and K. Terada, Low temperature polytetrafluoroethylene (PTFE) coating improves the appearance of orthodontic wires without changing their mechanical properties, Dent. Mater. J., 39 (2020) 721-734. https://doi.org/10.4012/dmj.2019-227. W. S. Hussain, J. K. Oleiwi and Q. A. Hamad, Study of Physical Properties of Biocomposite Based on the Polymer Blends Used for Denture Base Applications, Eng. Technol. J., 41 (2023) 1474 – 1487. http://doi.org/10.30684/etj.2023.141437.1496. M. Buerkle and Y. Asai, Thermal conductance of Teflon and Polyethylene: Insight from an atomistic, single-molecule level, Sci. Rep., 7 (2017) 41898. https://doi.org/10.1038/srep41898. V. Satulu, B. Mitu, V. Ion, V. Marascu, E. Matei, C. Stancu, and G. Dinescu, Combining Fluorinated Polymers with Ag Nanoparticles as a Route to Enhance Optical Properties of Composite Materials, Polymers (Basel), 12 (2020) 1640. https://doi.org/10.3390/polym12081640. V. Satulu, B. Mitu, A. M. Pandele, S. I. Voicu, L. Kravets and G. Dinescu, Composite polyethylene terephthalate track membranes with thin teflon-like layers: Preparation and surface properties, Appl. Surf. Sci., 476 (2019) 452-459. https://doi.org/10.1016/j.apsusc.2019.01.109. Y. Zhang, Q. Wang, C.S. Ramachandran, P. Guo and A. Wang, Microstructure and Performance of High-Velocity Oxygen-Fuel Coupled Physical Vapor Deposition (HVOF-PVD) Duplex Protective Coatings: A Review, Coatings, 12 (2022) 1395. https://doi.org/10.3390/coatings12101395. S. A. Mohammed, A. B. Mahmood and I. I. Al-Sheakli, Measurement of Surface Roughness of Copper Nickel Titanium Arch Wires at Dry and Wet Conditions: An In vitro Study, J. Res. Med. Dent. Sci., 7 (2019) 21-26. F. J. Gil, E. Espinar-Escalona, N. Clusellas, J. Fernandez-Bozal, M. Artes-Ribas and A. Puigdollers, New Bactericide Orthodonthic Archwire: NiTi with Silver Nanoparticles, Metals, 10 (2020) 702. https://doi.org/10.3390/met10060702. S. A. Hassanzadeh-Tabrizi, Precise calculation of crystallite size of nanomaterials: A review, J. Alloys Compd., 968 (2023) 171914. https://doi.org/10.1016/j.jallcom.2023.171914. Goetz-Neunhoeffer, F., and Hurle K. 2024. Mineralogical characterization of calcium phosphate cements for clinical needs, ed. J. M. Oliveira, R. L. Reis and S. Pina, pp. 199-217, Academic Press. H. A. Abdullah and R. A. Anaee, Characteristics and Morphological Studies of Nd Doped Titanium Thin Film Coating on SS 316L by DC Sputtering, Diyala J. Eng. Sci., 15 (2022) 22-30. https://doi.org/10.24237/djes.2022.15303. T. Siddiqui, M. K. Zia, M. Muaz, H. Ahsan and F. H. Khan, Synthesis and Characterization of Silver Nanoparticles (AgNPs) using Chemico-physical Methods, Ind. J. Chem. Anal., 6 (2023) 124-132. https://doi.org/10.20885/ijca.vol6.iss2.art4. I. Abiodun-Solanke, D. Ajayi and A. Arigbede, Nanotechnology and its application in dentistry, Ann. Med. Health Sci. Res., 4 (2014) 171-177. https://doi.org/10.4103/2141-9248.141951. J. Si, R. Ma, Y. Wu, Y. Dong and K. Yao, Microstructure and magnetic properties of novel powder cores composed of iron-based amorphous alloy and PTFE, J. Mater. Sci. 57 (2022) 8154–8166. https://doi.org/10.1007/s10853-022-07199-4. Y. M. Shulga, A. V. Melezhik, E. N. Kabachkov, F. O. Milovich, N. V. Lyskov, A. V. Irzhak, N. N. Dremova, G. L. Gutsev, A.Michtchenko, A.G. Tkachev and Y. Kumar, Characterisation and electrical conductivity of polytetrafluoroethylene/graphite nanoplatelets composite films, Appl. Phys. A 125, 460 (2019). https://doi.org/10.1007/s00339-019-2747-x. F. Li, M.D. Weir, J. Chen and H.H.K. Xu, Comparison of quaternary ammonium-containing with nano-silver-containing adhesive in antibacterial properties and cytotoxicity, Dent. Mater., 29 (2013) 450-461. https://doi.org/10.1016/j.dental.2013.01.012. A. Besinis, T. De Peralta T and R. D. Handy, Inhibition of biofilm formation and antibacterial properties of a silver nano-coating on human dentine, Nanotoxicology, 8 (2014) 745-54. https://doi.org/10.3109/17435390.2013.825343. D. M. Moreira, J. Oei, H. R. Rawls, J. Wagner, L. Chu, Y. Li, W. Zhang and K. Whang, A novel antimicrobial orthodontic band cement with in situ-generated silver nanoparticles, Angle Orthod., 85 (2015) 175-83. https://doi.org/10.2319/022314-127.1. S. Agnihotri, S. Mukherji and S. Mukherji, Immobilized silver nanoparticles enhance contact killing and show highest efficacy: elucidation of the mechanism of bactericidal action of silver, Nanoscale, 5 (2013) 7328-40. https://doi.org/10.1039/c3nr00024a. I. Francolini, C. Vuotto, A. Piozzi and G. Donelli, Antifouling and antimicrobial biomaterials: an overview, APMIS, 125 (2017) 392-417. https://doi.org/10.1111/apm.12675. G. Metin-Gürsoy, L. Taner and G. Akca, Nanosilver coated orthodontic brackets: in vivo antibacterial properties and ion release, Eur. J. Orthod., 39 (2017) 9-16. https://doi.org/10.1093/ejo/cjv097. S. Mei, H. Wang, W. Wang, L. Tong, H. Pan, C. Ruan, Q. Ma, M. Liu, H. Yang, L. Zhang, Y. Cheng, Y. Zhang, L. Zhao and, PK. Chu, Antibacterial effects and biocompatibility of titanium surfaces with graded silver incorporation in titania nanotubes, Biomater. 35 (2014) 4255-65. https://doi.org/10.1016/j.biomaterials.2014.02.005. N. F. N. N. A. Rahman, H. Hashim and S. I. Zubairi, Optimization of concentration and exposure time of polytetrafluoroethylene (PTFE) for the development of hydrophobic coating of drying chamber of spray dryer, IOP Conference Series: Earth and Environmental Science, 1200 (2023). https://doi.org/10.1088/1755-1315/1200/1/012044. S. P. Asrafali, T. Periyasamy, S. C. Kim and J. W. Lee, Enhanced wettability and adhesive property of ptfe through surface modification with fluorinated compounds, Mater. (Basel). 17 (2024) 3051. https://doi.org/10.3390/ma17133051. B. A. Aderibigbe, Metal-Based Nanoparticles for the Treatment of Infectious Diseases, Molecules, 22 (2017) 1370. https://doi.org/10.3390/molecules22081370.
Highlights
Ag-PTFE nanocomposite coating was successfully prepared. The Ag-PTFE coating layer was characterized in detail. The coated stainless-steel wire changed from hydrophilic to hydrophobic. Microbial growth was strongly inhibited on the coated stainless-steel wire.
Recommended Citation
Naser, Mahmood; Al-Hassani, Emad; and Al-Hassani, Fatima
(2025)
"Effect of Ag-PTFE nanocomposite coating on wettability and antimicrobial activity of orthodontic wires,"
Engineering and Technology Journal: Vol. 43:
Iss.
12, Article 7.
DOI: https://doi.org/10.30684/etj.2025.163995.2004
DOI
10.30684/etj.2025.163995.2004
First Page
1128
Last Page
1140





