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Formation and Bioactivity of Composite Structure with Sr-HA Phase and H2Ti5O11·H2O Nanorods on Ti Surface via Ultrasonic-Assisted Micro-Arc Oxidation and Heat Treatment

  • Qing Du*
  • , Qiang Zhai
  • , Su Cheng
  • , Yudong Lin
  • , Daqing Wei*
  • , Yaming Wang
  • , Yu Zhou
  • *Corresponding author for this work
  • Harbin University of Science and Technology
  • Harbin Engineering University
  • Harbin Institute of Technology
  • College of Nuclear Science and Technology, Harbin Engineering University

Research output: Contribution to journalArticlepeer-review

Abstract

To address the biological inertness of pure titanium implants, a composite coating with a strontium-doped hydroxyapatite (Sr-HA) phase and H2Ti5O11·H2O nanorods was engineered via ultrasonic-assisted micro-arc oxidation (UMAO) with hydrothermal treatment (HT). The ultrasonic field was applied to modulate the MAO discharge behavior, enhancing ion transport and coating formation. Structural characterization revealed that UMAO-HT coatings exhibited a lower anatase/rutile ratio and higher Sr-HA crystallinity, as compared to MAO-HT. In vitro simulated body immersion studies showed that UMAO-HT induced rapid apatite formation within 24 h, with a better apatite-inducing ability than the conventional MAO-HT. Density functional theory (DFT) simulations demonstrated that Sr substitution in HA lowered the (001) surface work function, enhancing Ca2⁺ adsorption energy and promoting apatite phase nucleation. This work reported the synergistic effects of ultrasonic-induced microstructure optimization and Sr-HA higher bioactivity, providing a mechanistic framework for designing next-generation bioactive coatings with enhanced osseointegration potential.

Original languageEnglish
Article number666
JournalCoatings
Volume15
Issue number6
DOIs
StatePublished - Jun 2025

Keywords

  • Sr-HA phase
  • bioactivity
  • materials studio simulation
  • ultrasonic-assisted micro-arc oxidation

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