206
Views
5
CrossRef citations to date
0
Altmetric
Original Articles

Frictional Behavior of Polyurethane Modified by Carbon Coatings Synthesized in Dual-Frequency Plasma

, , , , &
Pages 530-537 | Received 20 Apr 2015, Accepted 31 Aug 2015, Published online: 28 Apr 2016

References

  • Cheruthazhekatt, S., Cernak, M., Slavicek, P., and Havel, J. (2010), “Gas Plasmas and Plasma Modified Materials in Medicine,” Journal of Applied Biomedicine, 8(2), pp 55–66.
  • Ozeki, K. and Hirakuri, K. K. (2008), “The Effect of Nitrogen and Oxygen Plasma on the Wear Properties and Adhesion Strength of the Diamond-Like Carbon Film Coated on PTFE,” Applied Surface Science, 254(6), pp 1614–1621.
  • Guo, Y. B. and Hong, Ch. N. F. (2003), “Adhesion Improvements for Diamond-Like Carbon Films on Polycarbonate and Polymethylmethacrylate Substrates by Ion Plating with Inductively Coupled Plasma,” Diamonds and Related Materials, 12(3–7), pp 946–952.
  • Martinez-Martinez, D. and De Hosson, J. T. M. (2014), “On the Deposition and Properties of DLC Protective Coatings on Elastomers: A Critical Review,” Surface and Coating Technology, 258, pp 677–690.
  • Kaczorowski, W., Szymanski, W., Batory, D., and Niedzielski, P. (2014), “Tribological Properties and Characterization of Diamond Like Carbon Coatings Deposited by MW/RF and RF Plasma-Enhanced CVD Method on Poly(ether-ether-ketone),” Plasma Processes and Polymers, 11, pp 878–887.
  • Yoshida, S., Hagiwara, K., Hasebe, T., and Hotta, A. (2013), “Surface Modification of Polymers by Plasma Treatments for the Enhancement of Biocompatibility and Controlled Drug Release,” Surface and Coating Technology, 233, pp 99–107.
  • Rochford, E. T. J., Poulsson, A. H. C., Salavarrieta Varela, J., Lezuo, P., Richards, R. G., and Moriarty, T. F. (2014), “Bacterial Adhesion to Orthopaedic Implant Materials and a Novel Oxygen Plasma Modified PEEK Surface,” Colloids and Surfaces B, 113, pp 213–222.
  • Ohgoe, Y., Hirakuri, K. K., Tsuchimoto, K., Friedbacher, G., and Miyashita, O. (2004), “Uniform Deposition of Diamond-Like Carbon Films on Polymeric Materials for Biomedical Applications,” Surface and Coating Technology, 184(2–3), pp 263–269.
  • Jones, D. S., Garvin, C. P., Dowling, D., Donnelly, K., and Gorman, S. P. (2006), “Examination of Surface Properties and in vitro Biological Performance of Amorphous Diamond-Like Carbon-Coated Polyurethane,” Journal of Biomedical Materials Research Part B: Applied Biomaterials, 78, pp 230–236.
  • Bax, D. V., Kondyurin, A., Waterhouse, A., McKenzie, D. R., Weiss, A. S., and Bilek, M. M. M. (2014), “Surface Plasma Modification and Tropoelastin Coating of a Polyurethane Co-Polymer for Enhanced Cell Attachment and Reduced Thrombogenicity,” Biomaterials, 35(25), pp 6797–6809.
  • Lackner, J. M., Waldhauser, W., Hartmann, P., Bruckert, F., Weidenhaupt, M., Major, R., Sanak, M., Wiesinger, M., and Heim, D. (2012), “Hemocompatibility of Inorganic Physical Vapor Deposition (PVD) Coatings on Thermoplastic Polyurethane Polymers,” Journal of Functional Biomaterials, 3, pp 283–297.
  • Ohgoe, Y. and Hirakuri, K. K. (2004), “13.56 MHz Radio Frequency Plasma Properties on Hemispheric Electrodes and Diamond-Like Carbon Films Deposition on Three-Dimensional Polyurethane Diaphragms,” Journal of Vacuum Science & Technology A, 22, pp 2195–2200.
  • Asakawa, R., Nagashima, S., Nakamura, Y., Hasebe, T., Suzuki, T., and Hotta, A. (2011), “Combining Polymers with Diamond-Like Carbon (DLC) for Highly Functionalized Materials,” Surface and Coating Technology, 206(4), pp 676–685.
  • Valentini, L., Bellachioma, M. C., Lozzi, L., Santucci, S., and Kenny, J. M. (2002) “Helium Permeation through a-C:H Films Deposited on Polymeric Substrates,” Journal of Vacuum Science & Technology A, 20, pp 1647–1652.
  • Pankaj, S. K., Bueno-Ferrer, C., Misra, N. N., Milosavljevic, V., O'Donnell, C. P., Bourke, P., Keener, K. M., and Cullen, P. J. (2014), “Applications of Cold Plasma Technology in Food Packaging,” Trends in Food Science and Technology, 35(1), pp 5–17.
  • Cui, N. Y. and Brown, N. M. D. (2002), “Modification of the Surface Properties of a Polypropylene (PP) Film Using an Air Dielectric Barrier Discharge Plasma,” Applied Surface Science, 189(1–2), pp 31–38.
  • Pappas, D. (2011), “Status and Potential of Atmospheric Plasma Processing of Materials,” Journal of Vacuum Science & Technology A, 29, pp 020801–020817.
  • Kaczorowski, W. and Niedzielski, P. (2008), “Morphology and Growth Process of Carbon Films Prepared by Microwave/Radio Frequency Plasma Assisted CVD,” Advanced Engineering Materials, 10, pp 651–656.
  • Kaczorowski, W., Szymanski, W., Batory, D., and Niedzielski, P. (2015), “Effect of Plasma Treatment on the Surface Properties of Polydimethylsiloxane,” Journal of Applied Polymer Science, 132, pp 41635–41643.
  • Kaczorowski, W., Szymanski, W., Batory, D., and Niedzielski, P. (2015), “Evaluation of the Surface Properties of PEEK Substrate after Two-Step Plasma Modification: Etching and Deposition of DLC Coatings,” Surface and Coating Technology, 265, pp 92–98.
  • Wang, Y., Li, J., Wang, L., Chen, J., and Xue, Q. (2013), “Tribological Performances of Graphite-Like Carbon Films Coupled to Different Ceramics in Ambient Air and Water,” Tribology Transactions, 56, pp 333–341.
  • Gangopadhyay, A., Zdrodowski, R. J., and Simko, S. J. (2014), “Interactions of Diamond-Like Carbon Coatings with Fully Formulated Engine Oils,” Tribology Transactions, 57, pp 503–514.
  • Khun, N. W. and Liu, E. (2012), “Tribological Behavior of Polyurethane Immersed in Acidic,” Tribology Transactions, 55, pp 401–408.
  • Kaczorowski, W., Batory, D., and Niedzielski, P. (2009), “Application of Microwave/Radio Frequency and Radio Frequency/Magnetron Sputtering Techniques in Polyurethane Surface Modification,” Journal of Achievements in Materials and Manufacturing Engineering, 37, pp 286–291.
  • Tai, F. C., Lee, S. C., Chen, J., Wei, C., and Chang, S. H. (2009), “Multipeak Fitting Analysis of Raman Spectra on DLCH Film,” Journal of Raman Spectroscopy, 40, pp 1055–1059.
  • Aguiar, P. H. L., Oliveira, E. C., and Cruz, S. A. (2013), “Modification of Clarified Polypropylene by Oxygen Plasma to Improve the Adhesion of Thin Amorphous Hydrogenated Carbon Films Deposited by Plasma Enhanced Chemical Vapor Deposition,” Polymer Engineering & Science, 53, pp 1065–1072.
  • Terriza, A., Alvarez, R., Borras, A., Cotrino, J., Yubero, F., and González-Elipe, A. R. (2012), “Roughness Assessment and Wetting Behavior of Fluorocarbon Surfaces,” Journal of Colloid and Interface Science, 376, pp 274–282.
  • Wasy, A., Balakrishnan, G., Lee, S. H., Kim, J. K., Kim, D. G., Kim, T. G., and Song, J. I. (2014), “Argon Plasma Treatment on Metal Substrates and Effects on Diamond-Like Carbon (DLC) Coating Properties,” Crystal Research and Technology, 49, pp 55–62.
  • Lubwama, M., McDonnell, K. A., Kirabira, J. B., Sebbit, A., Sayers, K., Dowling, D., and Corcoran, B. (2012), “Characteristics and Tribological Performance of DLC and Si-DLC Films Deposited on Nitrile Rubber,” Surface and Coating Technology, 206, pp 4585–4593.
  • Reisel, G. and Dorner-Reisel, A. (2007), “Hydrogen Containing DLC Coatings on UHMW-PE Deposited by r.f.-PECVD,” Diamonds and Related Materials, 16, pp 1370–1373.
  • Verheydea, B., Rombouts, M., Vanhulsel, A., Havermans, D., Menevea, J., and Wangenheim, M. (2009), “Influence of Surface Treatment of Elastomers on Their Frictional Behaviour in Sliding Contact,” Wear, 266, pp 468–475.
  • Myshkin, N. K., Petrokovets, M. I., and Kovalev, A. V. (2005), “Tribology of Polymers: Adhesion, Friction, Wear, and Mass-Transfer,” Tribology International, 38, pp 910–921.
  • Chen, S., Wang, Q., and Wang, T. (2014), “Tribological Properties of Hydroxyl-Terminated Liquid Nitrile Rubber–Modified Polyurethane/Epoxy Interpenetrating Polymer Network Composites,” Journal of Macromolecular Science: Physics, 53, pp 243–253.
  • Kaltzakorta, O., Wasche, R., Hartelt, M., Aginagalde, A., and Tato, W. (2012), “Influence of Polymer Filler on Tribological Properties of Thermoplastic Polyurethane under Oscillating Sliding Conditions against Cast Iron,” Tribology Letters, 48, pp 209–216.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.