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Magnesium alloy biomaterials: Innovative engineering solutions for future biodegradable implant materials

  • Saro Birgani*
  • , Jad Abou-Saleh
  • , Matic Jovičević-Klug
  • , Björn Wiese
  • , J. Manoj Prabhakar
  • , Norbert Hort
  • , Tim M. Schwarz
  • , Michael Rohwerder
  • , Patricia Jovičević-Klug*
  • *Corresponding author for this work

Research output: Journal contributionsJournal articlesResearchpeer-review

Abstract

Magnesium (Mg) alloys are promising candidates for temporary orthopaedic and cardiovascular implants due to their biocompatibility, mechanical compatibility with bone, and complete biodegradability. Although extensive research has focused on alloying and conventional heat treatments to tailor their performance, the application of deep cryogenic treatment (DCT) remains largely unexplored. In this study, the influence of DCT on the microstructure, mechanical properties, and corrosion behaviour of Mg–Gd alloys with different Gd contents was systematically investigated. Three compositions Mg-2Gd, Mg-5Gd, and Mg-10Gd were examined under conventionally extruded (CHT) and DCT (−196 °C) for 8 h, 24 h and 48 h states. Microstructural and phase characterization was performed using scanning electron microscopy (SEM), X-ray diffraction (XRD) and atom probe tomography (APT). Additionally, XRD-based surface micro-residual stresses were analysed to observe changes in the stress state of the material. Next, corrosion behaviour was evaluated by potentiodynamic polarisation, while Raman shift spectroscopy was used to analyse surface oxides and passivation layer formation. Mechanical response was assessed via Vickers microhardness testing. The results demonstrate a composition-dependent response to DCT. An increase in hardness was observed for Mg-5Gd, whereas Mg-2Gd and Mg-10Gd exhibited reduced hardness following treatment. Changes in corrosion behaviour were also observed for all three alloys after DCT, suggesting that cryogenic processing alters the electrochemical response of the materials, likely through modifications of the microstructure. These findings highlight the potential of DCT as a supplementary processing route for tailoring the performance of biodegradable Mg–Gd alloys for biomedical applications.

Original languageEnglish
JournalJournal of Materials Research and Technology
Volume42
Pages (from-to)11832-11846
Number of pages15
ISSN2238-7854
DOIs
Publication statusPublished - 01.05.2026

Bibliographical note

Publisher Copyright:
© 2026 The Authors.

Research areas and keywords

  • Deep cryogenic treatment
  • Mechanism
  • Mg–Gd alloys
  • Microhardness
  • Microstructure
  • Residual stresses corrosion resistance
  • Engineering

ASJC Scopus Subject Areas

  • Ceramics and Composites
  • Biomaterials
  • Surfaces, Coatings and Films
  • Metals and Alloys

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