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Meeting 2024 TMS Annual Meeting & Exhibition
Symposium Advances in Biomaterials for 3D Printing of Scaffolds and Tissues
Presentation Title Filaments Made of Magnesium-incorporated Polymer for Potential Use in Bone Implants
Author(s) Sumama Nuthana kalva, Muammer Koç
On-Site Speaker (Planned) Sumama Nuthana kalva
Abstract Scope Magnesium (Mg) has similar mechanical qualities to bones, is biocompatible, and is biodegradable, making it suitable for bone tissue engineering applications. The primary goal of this study is to investigate the potential of using Mg-loaded polymer composites as filament feedstock for fused deposition modeling (FDM) 3D Printing. Four polymer-magnesium compositions were synthesized and produced into filaments, then used to print test samples on an FDM 3D printer. The effects of Mg inclusion on the filament's thermal, physicochemical, and printability properties are evaluated. The Mg particles are equally distributed in all compositions, according to SEM analysis of the films. The FTIR results show no chemical reaction between the polymers and the Mg particles. The photos of the filament's cross-section reveal that the distribution of Mg particles is uniform up to a Mg concentration of 15%. Beyond that, it has been demonstrated that uneven distribution and a rise in pores around the Mg particles impact their printability. The potential for using composite biomaterials for 3D-printed bone implants exists with the 5 and 10 percent Mg composite filaments that were printable overall.
Proceedings Inclusion? Planned:
Keywords Additive Manufacturing, Composites, Magnesium

OTHER PAPERS PLANNED FOR THIS SYMPOSIUM

3D Printing and Growing Fungal Tissue in Ambient Environment and Properties
3D Printing of Multiscale Human Tissue and Organ Equivalents
Bioabsorbable PLDL/Mg-wire Composites Manufactured by Fused Filament Fabrication for Tissue Engineering
Biodegradable Polymers for 3D Printing of Tissue Engineering Scaffolds: Challenges and Future Directions
Bioink Formulations for 3D Printing of Tissue Scaffolds: A Review of Materials and Printability
Design and Optimization of a 3D-printed Bioreactor for Long-term Ex-vivo Bone Tissue Culture
Effects of Post-printing Cell Distribution on Cell Viability and Proliferation in Inkjet-based Bioprinting of Vascular Structures
Engineering Polymeric BioInks for 3D Printing
Filaments Made of Magnesium-incorporated Polymer for Potential Use in Bone Implants
Graphene and MXene Nanomaterial Bioinks for Improvement of 3D Bioprinted Tissue Engineering
H-2: 3D Printable Bioscaffolds for Musculoskeletal Tissue Engineering using Ti_3 C_2 MXene Nanoparticles to Enhance Conductivity and Improve Cell Viability
Improving Predictability of Additively Manufactured Ti-6Al-4V Lattices for Customised Orthopaedic Devices
Improving Structural Integrity of a Bioinspired Structures through 3D Printing for Advancing Bone Tissue Engineering
Migration Behavior of Invasive and Non-invasive Breast Cancer Cells on a Graded Micropillar Surface
Structure-property Relationships in Solvent-cast 3D-printed Polymeric Biomaterials
The Influence of Iso-value on 3D-printed Sheet TPMS Ti6Al4V Scaffolds’ Mechanical Responses

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