Effect of TiC Nanoparticles on a Zn-Al-Cu System for Biodegradable Cardiovascular Stent Applications

ACS Biomater Sci Eng. 2024 May 13;10(5):3438-3453. doi: 10.1021/acsbiomaterials.3c01714. Epub 2024 Apr 2.

Abstract

Despite being a weaker metal, zinc has become an increasingly popular candidate for biodegradable implant applications due to its suitable corrosion rate and biocompatibility. Previous studies have experimented with various alloy elements to improve the overall mechanical performance of pure Zn without compromising the corrosion performance and biocompatibility; however, the thermal stability of biodegradable Zn alloys has not been widely studied. In this study, TiC nanoparticles were introduced for the first time to a Zn-Al-Cu system. After hot rolling, TiC nanoparticles were uniformly distributed in the Zn matrix and effectively enabled phase control during solidification. The Zn-Cu phase, which was elongated and sharp in the reference alloy, became globular in the nanocomposite. The strength of the alloy, after introducing TiC nanoparticles, increased by 31% from 259.7 to 340.3 MPa, while its ductility remained high at 49.2% elongation to failure. Fatigue performance also improved greatly by adding TiC nanoparticles, increasing the fatigue limit by 47.6% from 44.7 to 66 MPa. Furthermore, TiC nanoparticles displayed excellent phase control capability during body-temperature aging. Without TiC restriction, Zn-Cu phases evolved into dendritic morphologies, and the Al-rich eutectic grew thicker at grain boundaries. However, both Zn-Cu and Al-rich eutectic phases remained relatively unchanged in shape and size in the nanocomposite. A combination of exceptional tensile properties, improved fatigue performance, better long-term stability with a suitable corrosion rate, and excellent biocompatibility makes this new Zn-Al-Cu-TiC material a promising candidate for biodegradable stents and other biodegradable applications.

Keywords: TiC nanoparticle; antifatigue; biodegradable Zn alloy; phase control; thermal stability.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Absorbable Implants*
  • Alloys / chemistry
  • Aluminum / chemistry
  • Aluminum / pharmacology
  • Biocompatible Materials / chemistry
  • Biocompatible Materials / pharmacology
  • Copper* / chemistry
  • Copper* / pharmacology
  • Corrosion
  • Humans
  • Materials Testing
  • Metal Nanoparticles / chemistry
  • Metal Nanoparticles / therapeutic use
  • Nanocomposites / chemistry
  • Nanoparticles / chemistry
  • Stents*
  • Titanium / chemistry
  • Titanium / pharmacology
  • Zinc* / chemistry
  • Zinc* / pharmacology

Substances

  • Zinc
  • Copper
  • Alloys
  • Titanium
  • Aluminum
  • Biocompatible Materials