Publication:
Ti–Zr–Si–Nb Nanocrystalline Alloys and Metallic Glasses: Assessment on the Structure, Thermal Stability, Corrosion and Mechanical Properties

dc.contributor.authorGabor, Camelia
dc.contributor.authorCristea, Daniel
dc.contributor.authorVelicu, Ioana-Laura
dc.contributor.authorBedo, Tibor
dc.contributor.authorGatto, Andrea
dc.contributor.authorBassoli, Elena
dc.contributor.authorVarga, Bela
dc.contributor.authorPop, Mihai Alin
dc.contributor.authorGeanta, Victor
dc.contributor.authorStefanoiu, Radu
dc.contributor.authorCodescu, Mirela Maria
dc.contributor.authorManta, Eugen
dc.contributor.authorPatroi, Delia
dc.contributor.authorFlorescu, Monica
dc.contributor.authorMunteanu, Sorin Ion
dc.contributor.authorGhiuta, Ioana
dc.contributor.authorLupu, Nicoleta
dc.contributor.authorMunteanu, Daniel
dc.date.accessioned2025-09-24T06:09:12Z
dc.date.issued2019-05-12
dc.description.abstractThe development of novel Ti-based amorphous orβ-phase nanostructured metallic materials could have significant benefits for implant applications, due to improved corrosion and mechanical characteristics (lower Young’s modulus, better wear performance, improved fracture toughness) in comparison to the standardized α+β titanium alloys. Moreover, the devitrification phenomenon, occurring during heating, could contribute to lower input power during additive manufacturing technologies. Ti-based alloy ribbons were obtained by melt-spinning, considering the ultra-fast cooling rates this method can provide. The titanium alloys contain in various proportions Zr, Nb, and Si (Ti60Zr10Si15Nb15, Ti64Zr10Si15Nb11, Ti56Zr10Si15Nb19) in various proportions. These elements were chosen due to their reported biological safety, as in the case of Zr and Nb, and the metallic glass-forming ability and biocompatibility of Si. The morphology and chemical composition were analyzed by scanning electron microscopy and energy-dispersive X-ray spectroscopy, while the structural features (crystallinity, phase attribution after devitrification (after heat treatment)) were assessed by X-ray diffraction. Some of the mechanical properties (hardness, Young’s modulus) were assessed by instrumented indentation. The thermal stability and crystallization temperatures were measured by differential thermal analysis. High-intensity exothermal peaks were observed during heating of melt-spun ribbons. The corrosion behavior was assessed by electrocorrosion tests. The results show the potential of these alloys to be used as materials for biomedical applications.
dc.description.sponsorshipThis research has received funding from the European Union’s Horizon 2020 research and innovation program under grant agreement No. 723699 and project PN-III-P1-1.2-PCCDI-2017-239/60PCCDI 2018 “Obtaining and expertise of new biocompatible materials for medical applications – MedicalMetMat” within PNCDI III. The authors also acknowledge the structural funds project PRO-DD (POS-CCE O.2.2.1, ID 123, SMIS 2637, ctr. No 11/2009) for providing the some of the infrastructure used in this work at the CDI Institute of Transilvania University of Brasov.
dc.identifier.doi10.3390/ma12091551
dc.identifier.issn1996-1944
dc.identifier.urihttps://repository.unitbv.ro/handle/123456789/2023
dc.publisherMDPI AG
dc.relation.ispartofMaterials
dc.subjectbiocompatibility
dc.subjectmelt spinning
dc.subjectamorphous titanium alloy
dc.subjectthermal stability
dc.titleTi–Zr–Si–Nb Nanocrystalline Alloys and Metallic Glasses: Assessment on the Structure, Thermal Stability, Corrosion and Mechanical Properties
dc.typeArticle
dspace.entity.typePublication
oaire.citation.issue9
oaire.citation.volume12

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