Publication date: 30 July 2026
Source: Journal of Biomimetics, Biomaterials and Biomedical Engineering Vol. 73
Author(s): Muslimin Muslimin, Dedy Hendra Jati, Nasywa Ghaitsa Arwanjani, Dhiya Lugyana, Azam Milah Muhammad, Ardiyansyah Syahrom
This study presents the preparation and printing failure analysis of polycaprolactone-magnesium-hydroxyapatite (PCL-Mg-HA) composite filaments intended for Fused Deposition Modeling (FDM) 3D printing. The research aimed to investigate the challenges encountered during the printing process and identify factors affecting the printability of the fabricated biocomposite filaments. The filament was prepared using a double extrusion method, with PCL as the polymer matrix and combined with 3 wt% magnesium (Mg) and 5 wt% hydroxyapatite (HA). The double extrusion process, conducted at 75°C for initial mixing and 55°C for diameter refinement, successfully produced a continuous filament with an average diameter of 1.82 ± 0.05 mm, which closely matched the FDM standard of 1.75 mm. Despite achieving satisfactory filament geometry, the material exhibited poor printability during FDM trials using a Creality Ender 3 V3 SE printer. Printing attempts at nozzle temperatures between 150°C and 180°C resulted in unstable extrusion, nozzle clogging, and incomplete specimen formation. These failures were primarily attributed to the combined effects of high melt viscosity, the sticky behavior of PCL, and the increased stiffness of the composite caused by the Mg and HA fillers. Observations also indicated that the difference in thermal conductivity between PCL and the fillers resulted in uneven melting and localized solidification within the nozzle. Comparative tests using pure PCL filament confirmed similar difficulties, as extrusion remained inconsistent and the printed parts showed weak interlayer adhesion and visible porosity. These findings suggest that the PCL-Mg-HA composite, in its current formulation, is not yet suitable for stable FDM 3D printing due to its rheological and thermal incompatibilities with standard printing conditions. This study offers valuable insights into the processability limitations of PCL-based biocomposite filaments, serving as a reference for future research in developing bioactive materials for bone tissue engineering applications.
[1] W. Zhang et al., "3D-printing magnesium–polycaprolactone loaded with melatonin inhibits the development of osteosarcoma by regulating cell-in-cell structures," J. Nanobiotechnology, vol. 19, no. 1, p.1–20, 2021.
[2] C. Wang et al., "3D printing of bone tissue engineering scaffolds," Bioact. Mater., vol. 5, no. 1, p.82–91, 2020.
[3] M. Rismalia, S. C. Hidajat, I. G. R. Permana, B. Hadisujoto, M. Muslimin, and F. Triawan, "Infill pattern and density effects on the tensile properties of 3D printed PLA material," in Journal of Physics: Conference Series, IOP Publishing Ltd, Dec. 2019.
[4] M. A. Woodruff and D. W. Hutmacher, "The return of a forgotten polymer - Polycaprolactone in the 21st century," Prog. Polym. Sci., vol. 35, no. 10, p.1217–1256, 2010.
[5] A. Abdal-hay, N. T. Raveendran, B. Fournier, and S. Ivanovski, "Fabrication of biocompatible and bioabsorbable polycaprolactone/ magnesium hydroxide 3D printed scaffolds: Degradation and in vitro osteoblasts interactions," Compos. Part B Eng., vol. 197, no. January, 2020.
[6] L. Witek, Y. Shi, and J. Smay, "Controlling calcium and phosphate ion release of 3D printed bioactive ceramic scaffolds: An in vitro study," J. Adv. Ceram., vol. 6, no. 2, p.157–164, 2017.
[7] S. Shen et al., "Characterization and Biocompatibility Assessment of 3D-Printed HA/PCL Porous Bionic Bone Scaffold: in Vitro and in Vivo Evaluation," J. Musculoskelet. Neuronal Interact., vol. 25, no. 1, p.119–132, 2025.
DOI: 10.22540/JMNI-25-119
[8] W. Zhang et al., "3D-printing magnesium–polycaprolactone loaded with melatonin inhibits the development of osteosarcoma by regulating cell-in-cell structures," J. Nanobiotechnology, vol. 19, no. 1, p.1–21, 2021.
[9] X. Yang, Y. Wang, Y. Zhou, J. Chen, and Q. Wan, "The application of polycaprolactone in three-dimensional printing scaffolds for bone tissue engineering," Polymers (Basel)., vol. 13, no. 16, 2021.
[10] U. Hasanah and M. Muslimin, "Pengaruh Tekanan Compression Moulding terhadap Kinerja Pelat Bipolar Komposit Grafit/Resin Epoksi Komposisi 20% Karbon Tempurung Kelapa," J. Mek. Terap., vol. 1, no. 1, p.71–80, 2020.
[11] N. Aboutalebianaraki, C. J. Neal, S. Seal, and M. Razavi, "Biodegradable Mg-Sc-Sr Alloy Improves Osteogenesis and Angiogenesis to Accelerate Bone Defect Restoration," J. Funct. Biomater., vol. 13, no. 4, 2022.
DOI: 10.3390/jfb13040261
[12] S. Pokhrel, "Hydroxyapatite: Preparation, Properties and Its Biomedical Applications," Adv. Chem. Eng. Sci., vol. 08, no. 04, p.225–240, 2018.
[13] F. Wang et al., "Fabrication and Characterization of PCL/HA Filament as a 3D Printing Material Using Thermal Extrusion Technology for Bone Tissue Engineering," Polymers (Basel)., vol. 14, no. 4, 2022.
[14] F. Deposition, D. Image, and T. Testing, "Effect of ASTM-D638 Specimen Type on the Tensile Properties of Fused Deposition Modelling 3D-Printed PLA Specimens ASTM- D638 Numune Tipinin Erimiş Biriktirme Modelleme 3D Baskılı PLA Numunelerinin Çekme Özelliklerine Etkisi," 2025.
[15] Muslimin, D. Luqyana, and A. M. Muhamad, "Manufacture and Testing of 3D Filament Printers Using Recycled LDPE Plastic Raw Materials BT - Advances in Manufacturing Processes and Smart Manufacturing Systems," D. Kurniawan and F. M. Nor, Eds., Cham: Springer Nature Switzerland, 2024, p.149–159.
[16] Muslimin, A. R. Irfan, M. Sugeng, N. G. Vina, L. Dhiya, and A. M. Muhammad, "Unveiling the Potential of Waste Materials: Investigating the Novel Approach of Using Scrap Fabric-Inner Tubes Composites for Sound Absorption," Mater. Sci. Forum, vol. 1134, p.113–123, 2024.
DOI: 10.4028/p-hoK1B8