Afeeqa Puteri Marzuki, Farrahshaida Mohd Salleh, Muhammad Hussain Ismail, Abu Bakar Sulong, Abdul Manaf Abdullah, Izdihar Tharazi, Bibi Intan Suraya Murat
Abstract The advancement of additive manufacturing has enabled the transition of 3D printing from a prototyping tool to a platform for producing functional, bioactive, and patient-specific implants. This study explores the fabrication and characterisation of polylactic acid (PLA) reinforced with polyamide 12 (PA12) and hydroxyapatite (HA) as composite filaments for fused deposition modeling (FDM), with a focus on bone scaffold applications. While reinforcements such as carbon, glass, and ceramic fillers have previously enhanced mechanical and thermal performance, PLA/HA composites remain hindered by brittleness. To overcome this limitation, PA12 was incorporated to improve ductility and fracture resistance while retaining the bioactivity of HA. Three formulations were prepared: PLA/20PA-10HA, PLA/30PA-10HA, and PLA/40PA-10HA, and systematically evaluated for density, functional groups (FTIR), thermal transitions (DSC), rheology, and tensile behaviour. Filament tensile testing revealed Young’s modulus values of 0.23 ± 0.06 GPa, 0.19 ± 0.06 GPa, and 0.28 ± 0.03 GPa, respectively. Among these, PLA/40PA-10HA demonstrated the most favourable balance of rheological stability and mechanical performance, leading to its selection for FDM printing. The printed cylindrical specimens achieved a compressive strength of 43.04 ± 2.78 MPa, a Young’s modulus of 0.84 ± 0.19 GPa, and a failure strain of 12.57 ± 1.18%. These properties fall within the range of human trabecular bone, indicating that the developed composite can sustain physiological loads. The findings establish a foundation for on-demand fabrication of load bearing, bioactive scaffolds through FDM, advancing the potential of chair-side manufacturing for bone tissue engineering.