Herliansyah, Muhammad Kusumawan and Nurbaiti, Nurbaiti and Tontowi, Alva Edy and Widiastuti, Maria Goreti and van Hoten, Hendri (2025) Effect of Adding Nanocrystalline Cellulose on Reducing Micro-Crack of Three-Dimensional Printed Hydroxyapatite/Collagen Composite. International Journal of Engineering, Transactions B: Applications, 38 (11). 2537 - 2546. ISSN 1728144X
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Abstract
Large bone defects can not be recovered by self-repair meanwhile, bone scaffold with biomimetic material is needed. The biomimetic materials are hydroxyapatite/collagen as inorganic and organic material. The study on printed hydroxyapatite/collagen has been conducted. However, the crack occurred after printing and drying. The novelty of the research is addition of nanocrystalline cellulose (NCC) into the HA/collagen composite to reduce microcrack. The hydroxyapatite/collagen/NCC composite scaffold was printed with 3D bioprinting which was a modification in bracket and cartridge with print speed and layer height of 10 mm/min and 0.5 mm. The cracking process that occurred in the hydroxyapatite/collagen material was investigated using Mi-View microscope. Furthermore, the scaffold of hydroxyapatite/collagen/NCC composite with composition 70/15/15 (w/v) was examined using the Vickers hardness test, Fourier transform infrared spectroscopy (FT-IR), X-ray diffraction (XRD), transmission electron microscope (TEM), scanning electron microscope (SEM), energy dispersive X-ray (EDX), and thermogravimetric analysis/derivative thermogravimetry (TGA/DTG). After the printing process, shrinkage occurs on the X, Y, and Z axes with values of 14, 15.1 and 20.5. Moreover, the hardness value was 0.002 to 0.003 HV with the detection of hydroxyapatite, collagen, and NCC. The crystallinity of hydroxyapatite/collagen/NCC was 28. The presence of NCC in the composite material can maintain a uniform three-dimensional network structure with a dominant composition of oxygen (47.77), calcium (36.62), and phosphate (12.8). The TGA/DTG represented the amount of weight loss of 23.46 with an initial temperature of 610 °C and maximum temperature of 650 °C. Therefore, hydroxyapatite/collagen/NCC is promising material for bone tissue engineering.
| Item Type: | Article |
|---|---|
| Additional Information: | Cited by: 1; All Open Access; Hybrid Gold Open Access |
| Uncontrolled Keywords: | 3D Bioprinting Based on Extrusion; Micro Crack; Shrinkage; Composite; Nanocrystalline Cellulose |
| Subjects: | T Technology > T Technology (General) > Industrial engineering. Management engineering T Technology > TJ Mechanical engineering and machinery |
| Divisions: | Faculty of Engineering > Mechanical and Industrial Engineering Department |
| Depositing User: | Rita Yulianti Yulianti |
| Date Deposited: | 06 Apr 2026 02:57 |
| Last Modified: | 06 Apr 2026 02:57 |
| URI: | https://ir.lib.ugm.ac.id/id/eprint/24446 |
