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Formation of a bacteriostatic surface on zrnb alloy via anodization in a solution containing cu nanoparticles

  • Sumy State University
  • Nano Prime
  • Silesian University of Technology
  • NASU - Institute of Applied Physics
  • Institute of Physical Chemistry of the Polish Academy of Sciences

Research output: Contribution to journalArticlepeer-review

16 Citations (Scopus)

Abstract

High strength, excellent corrosion resistance, high biocompatibility, osseointegration ability, and low bacteria adhesion are critical properties of metal implants. Additionally, the implant surface plays a critical role as the cell and bacteria host, and the development of a simultaneously antibacterial and biocompatible implant is still a crucial challenge. Copper nanoparticles (CuNPs) could be a promising alternative to silver in antibacterial surface engineering due to low cell toxicity. In our study, we assessed the biocompatibility and antibacterial properties of a PEO (plasma electrolytic oxidation) coating incorporated with CuNPs (Cu nanoparticles). The structural and chemical parameters of the CuNP and PEO coating were studied with TEM/SEM (Transmission Electron Microscopy/Scanning Electron Microscopy), EDX (Energy-Dispersive X-ray Dpectroscopy), and XRD (X-ray Diffraction) methods. Cell toxicity and bacteria adhesion tests were used to prove the surface safety and antibacterial properties. We can conclude that PEO on a ZrNb alloy in Ca–P solution with CuNPs formed a stable ceramic layer incorporated with Cu nanoparticles. The new surface provided better osteoblast adhesion in all time-points compared with the nontreated metal and showed medium grade antibacterial activities. PEO at 450 V provided better antibacterial properties that are recommended for further investigation.

Original languageEnglish
Article number3913
Pages (from-to)1-15
Number of pages15
JournalMaterials
Volume13
Issue number18
DOIs
Publication statusPublished - 2 Sept 2020

Keywords

  • Bacterial adhesion
  • Biocompatibility
  • Dental implant
  • Plasma electrolytic oxidation
  • Zirconium-niobium alloy

ASJC Scopus subject areas

  • General Materials Science
  • Condensed Matter Physics

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