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Production of a biofunctional titanium surface using plasma electrolytic oxidation and glow-discharge plasma for biomedical applications

  • Thamara Beline
  • , Isabella Da Silva Vieira Marques
  • , Adaias O. Matos
  • , Erika S. Ogawa
  • , Antônio P. Ricomini-Filho
  • , Elidiane C. Rangel
  • , Nilson Cristino Da Cruz
  • , Cortino Sukotjo
  • , Mathew T. Mathew
  • , Richard Landers
  • , Rafael L.X. Consani
  • , Marcelo Ferraz Mesquita
  • , Valentim Adelino Ricardo Barão
  • Universidade Estadual de Campinas
  • Universidade Estadual Paulista Júlio de Mesquita Filho
  • University of Illinois at Chicago
  • University of Illinois at Urbana-Champaign

Research output: Contribution to journalArticlepeer-review

40 Scopus citations

Abstract

In this study, the authors tested the hypotheses that plasma electrolytic oxidation (PEO) and glow-discharge plasma (GDP) would improve the electrochemical, physical, chemical, and mechanical properties of commercially pure titanium (cpTi), and that blood protein adsorption on plasma-treated surfaces would increase. Machined and sandblasted surfaces were used as controls. Standard electrochemical tests were conducted in artificial saliva (pHs of 3.0, 6.5, and 9.0) and simulated body fluid. Surfaces were characterized by scanning electron microscopy, energy-dispersive spectroscopy, x-ray photoelectron spectroscopy, atomic force microscopy, x-ray diffraction, profilometry, Vickers microhardness, and surface energy. For biological assay, the adsorption of blood serum proteins (i.e., albumin, fibrinogen, and fibronectin) was tested. Higher values of polarization resistance and lower values of capacitance were noted for the PEO and GDP groups (p < 0.05). Acidic artificial saliva reduced the corrosion resistance of cpTi (p < 0.05). PEO and GDP treatments improved the surface properties by enrichment of the surface chemistry with bioactive elements and increased surface energy. PEO produced a porous oxide layer (5-μm thickness), while GDP created a very thin oxide layer (0.76-μm thickness). For the PEO group, the authors noted rutile and anatase crystalline structures that may be responsible for the corrosion barrier improvement and increased microhardness values. Plasma treatments were able to enhance the surface properties and electrochemical stability of titanium, while increasing protein adsorption levels.

Original languageEnglish
Article number011013
JournalBiointerphases
Volume11
Issue number1
DOIs
StatePublished - Mar 1 2016

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