Phase-separated Zr70-xAl12.5Fe17.5Yx (x = 0–25 at.%) metallic glasses with suitable mechanical properties for possible implant applications

  • Devinder Singh
  • , Parthiban Ramasamy
  • , Anna Sophie Jelinek
  • , Verena Maier-Kiener
  • , Rahul Bhattacharya
  • , Zhuo Chen
  • , Elham Sharifikolouei
  • , Alessandro Calogero Scalia
  • , Ziba Najmi
  • , Andrea Cochis
  • , Simon Fellner
  • , Eray Yüce
  • , Christoph Gammer
  • , Zaoli Zhang
  • , Jürgen Eckert

Risultato della ricerca: Contributo su rivistaArticolo in rivistapeer review

Abstract

Phase separation arises from the substitution of Y in Zr70-xAl12.5Fe17.5Yx (x = 0–25 at.%) metallic glasses (MGs), resulting in the formation of nano-amorphous domains within a glassy matrix. The glasses with x ≥ 10 show a typical liquid phase separation-induced two-glassy phase (Zr-rich and Y-rich) morphology with droplet-like microstructures (nano-amorphous domains). The size of the domains increases with increasing Y addition. Atom probe tomography (APT) analysis confirms the formation of nanometer-sized Y-enriched clusters for x = 15 and 20. The effect of microstructural variation due to phase separation on the mechanical properties was studied using micro- and nano-indentation techniques. The micro-hardness and nano-hardness are found to be in the range of 4.58–5.73 GPa and 5.22–6.11 GPa for the alloys with x = 0–25. The hardness and elastic modulus decrease gradually with the increase in Y content. The Zr-based MGs exhibit Young's moduli in the range of 81–91 GPa, which are lower than that of Co–Cr–Mo, 316L SS and Ti–6Al–4V commercial implant alloys. Evaluation of the cytocompatibility of the MG ribbons reveals high metabolic activity and well-spread human gingival fibroblast (HGF) cells on the surface of x = 10 and 15 samples. Thus, the two glassy-phase Zr-based MGs free of toxic elements (Ni and Cu) exhibit suitable mechanical properties and biocompatibility, making them strong contenders for use in implant applications.

Lingua originaleInglese
pagine (da-a)6468-6484
Numero di pagine17
RivistaJournal of Materials Research and Technology
Volume35
DOI
Stato di pubblicazionePubblicato - 1 mar 2025

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