中文版 | English
Title

Additive manufacturing of anti-bacterial and low-cost Ti-Mo(-Ag) alloys using elemental powders through in situ laser alloying

Author
Corresponding AuthorDargusch, M. S.; Yan, M.
Publication Years
2023
DOI
Source Title
ISSN
0022-2461
EISSN
1573-4803
Abstract
The Ti-15Mo alloy has become a widely recognized biomedical Ti alloy due to its excellent properties, including a low Young's modulus that is close to that of a human bone. Selective laser melting (SLM) additive manufacturing (AM) offers both advanced manufacturing capabilities to the processing of the alloy and the potential to make customized implants. The feedstock cost of pre-alloyed Ti-15Mo powder, however, is high, like that of many other Ti alloys, and can be a major obstacle to the wider application of the AM technique. This study focused on mitigating this problem by using an in situ laser alloying approach, wherein a low-cost hydride-dehydrate (HDH) Ti powder was mechanically mixed with elemental Mo powder to form a composite powder feedstock (i.e., Ti + Mo). The Ti-15Mo alloy could be printed with a high relative density (similar to 99.76%). A finite element simulation was performed to study the melt pool during the SLM process with subsequent detailed discussions to understand the in situ alloying mechanism. Mechanical property indicates the as-printed Ti-15Mo has high strength (similar to 1170 MPa) but low ductility, while the latter has been much improved by introducing a merely 0.2 wt% of yttrium (Y). Based on the optimized Ti-15Mo-0.2Y alloy with a strength of similar to 1300 MPa and a modulus of similar to 85 GPa, different amounts of elemental Ag powder were further alloyed in situ to acquire antibacterial properties. Compared with the antibacterial activity of the control group, that of the final material, i.e., in situ laser alloyed Ti-15Mo-0.2Y-2.5Ag, reached 92-95%; the addition of Ag had a minimal effect on the cell viability. In vivo experiments demonstrated the Ag-containing alloys to exhibit good biocompatibility.
URL[Source Record]
Indexed By
Language
English
SUSTech Authorship
First ; Corresponding
Funding Project
State Key Laboratory of Materials Processing and Die & Mould Technology, Huazhong University of Science and Technology[P2021-013] ; Guangdong Basic and Applied Basic Research Foundation[2020B1515120013] ; National Natural Science Foundation of China["51971108","52271032"]
WOS Research Area
Materials Science
WOS Subject
Materials Science, Multidisciplinary
WOS Accession No
WOS:000918233300002
Publisher
ESI Research Field
MATERIALS SCIENCE
Data Source
Web of Science
Citation statistics
Cited Times [WOS]:0
Document TypeJournal Article
Identifierhttp://kc.sustech.edu.cn/handle/2SGJ60CL/431013
DepartmentDepartment of Materials Science and Engineering
Affiliation
1.Southern Univ Sci & Technol, Dept Mat Sci & Engn, Shenzhen 518055, Peoples R China
2.Univ Queensland, Sch Mech & Min Engn, Brisbane 4072, Australia
3.Chinese Acad Sci, Shenzhen Inst Adv Technol, Shenzhen, Peoples R China
4.Southern Univ Sci & Technol, Jiaxing Res Inst, Jiaxing, Peoples R China
5.Huazhong Univ Sci & Technol, State Key Lab Mat Proc & Die & Mould Technol, Wuhan 430074, Peoples R China
First Author AffilicationDepartment of Materials Science and Engineering
Corresponding Author AffilicationDepartment of Materials Science and Engineering;  Southern University of Science and Technology
First Author's First AffilicationDepartment of Materials Science and Engineering
Recommended Citation
GB/T 7714
Xu, J. Y.,Li, K. L.,Tang, J. C.,et al. Additive manufacturing of anti-bacterial and low-cost Ti-Mo(-Ag) alloys using elemental powders through in situ laser alloying[J]. JOURNAL OF MATERIALS SCIENCE,2023.
APA
Xu, J. Y..,Li, K. L..,Tang, J. C..,Zhou, Y. H..,Luo, J. P..,...&Yan, M..(2023).Additive manufacturing of anti-bacterial and low-cost Ti-Mo(-Ag) alloys using elemental powders through in situ laser alloying.JOURNAL OF MATERIALS SCIENCE.
MLA
Xu, J. Y.,et al."Additive manufacturing of anti-bacterial and low-cost Ti-Mo(-Ag) alloys using elemental powders through in situ laser alloying".JOURNAL OF MATERIALS SCIENCE (2023).
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