Journal of Alloys and Compounds2022,Vol.90913.DOI:10.1016/j.jallcom.2022.164764

Zirconia-high entropy alloys joints for biomedical applications: The role of Ag-based fillers on interfacial reactivity

Gambaro S. Valenza F. Muolo M.L. Passerone A. Cacciamani G. Riani P.
Journal of Alloys and Compounds2022,Vol.90913.DOI:10.1016/j.jallcom.2022.164764

Zirconia-high entropy alloys joints for biomedical applications: The role of Ag-based fillers on interfacial reactivity

Gambaro S. 1Valenza F. 1Muolo M.L. 1Passerone A. 1Cacciamani G. 1Riani P.2
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作者信息

  • 1. National Research Council Institute of Condensed Matter Chemistry and Technologies for Energy CNR-ICMATE
  • 2. Chemistry and Industrial Chemistry Department (DCCI) University of Genova
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Abstract

? 2022Metal-ceramic joints represent an important choice for biomedical devices, in orthopaedic field or as micro-stimulators. ZrO2-Ag-HEA joint is here proposed to replace the currently used Ti6Al4V by new Ti-based refractory HEAs. To evaluate the system reactivity, wettability of ZrO2 by different Ag-based alloys at 1000 °C and their interfacial layers were studied, for the first time. Interpretation and discussion of systems reactivity were supported by thermodynamic calculations, according to the CALPHAD approach and the ad-hoc Ag-Ti-Zr-O thermodynamic database, implemented in this work. A good wettability was reached at 1000 °C adding Ti to Ag: Ag-4Ti and Ag-8Ti reached contact angles of 81–85°. Ag-4Ti-2Zr showed the best wettability (77°) and the most complex interfacial microstructure. A continuous hcp (Ti,O), ~ 20 μm thick, promoted the wettability of Ag-4Ti and Ag-8Ti. In both cases, AgTi was the only intermetallic compound found in the bulk. Ag-4Ti-2Zr formed a thicker interfacial layer of hcp-(Ti,Zr,O) + bcc-(Ti,Zr) + a less compact Ag(Ti,Zr)2 layer. Here, a low amount of Ag(Ti,Zr) and Ag(Ti,Zr)2 was found in the Ag matrix. Since Ag resulted a promising filler to braze Ti-rich substrates to ZrO2 at 1000 °C, preliminary HEA-Ag-ZrO2 joints were characterized. A sound and defects-free interface was observed, with a first layer, mainly formed by Ag, Ti and Zr (HV ~ 600), and a Ag-based interface (HV ~ 250), extending until the HEA. Further works envisage mechanical and electrochemical evaluations of the system to pave the way for the production of novel HEA-Ag-ZrO2 joints to be used in biomedical applications.

Key words

Bio-HEAs/Brazing/CALPHAD method/Interfacial reactivity/ZrO2 bio-ceramic

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出版年

2022
Journal of Alloys and Compounds

Journal of Alloys and Compounds

EISCI
ISSN:0925-8388
被引量6
参考文献量47
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