Eddy
Department of Dental Materials, Faculty of Dentistry, Universitas Trisakti, Jakarta

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Fabrication of composite block from beta-tricalcium phosphate and polyacrylic acid via freeze-drying method Rosalina Tjandrawinata; Eddy; Rafhaela Johanna Halim; Thet Thet Swe; Tansza Setiana Putri
Dental Journal (Majalah Kedokteran Gigi) Vol. 59 No. 1 (2026): March
Publisher : Faculty of Dental Medicine, Universitas Airlangga https://fkg.unair.ac.id/en

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.20473/j.djmkg.v59.i1.p63-67

Abstract

Background: Beta-tricalcium phosphate (β-TCP) is widely used in bone grafting due to its biocompatibility and bioresorbability. Recently, there has been growing interest in using sustainable materials, such as green mussel shells, as an alternative source for β-TCP. These shells, rich in calcium carbonate, provide a cost-effective and environmentally friendly alternative for β-TCP synthesis. Purpose: To fabricate composite blocks from β-TCP derived from green mussel shells, mixed with polyacrylic acid (PAA), using a setting reaction and freeze-drying method. Methods: Beta-tricalcium phosphate powder was obtained via wet precipitation, starting with calcium carbonate from green mussel shells, converting it to calcium oxide, and then to β-TCP. The resulting powder was mixed with PAA, set, and freeze-dried to form composite blocks. Results: Characterization of the composite blocks for porosity and diametral tensile strength (DTS) showed that blocks made with green mussel shell-derived β-TCP had rougher surfaces due to larger particles than control blocks made with commercial β-TCP. Composite blocks with 70% green mussel shell-derived β-TCP and 30% PAA exhibited significantly higher porosity (26.97% ± 2.64%) and DTS (11.76 ± 1.59 MPa) than those made with commercial β-TCP (porosity: 13.40% ± 1.56%; DTS: 7.79 ± 1.29 MPa). Reducing β-TCP content to 60% resulted in increased porosity (34.22% ± 1.84%) and lower DTS (6.41 ± 0.78 MPa). Conclusion: Composite blocks made from green mussel shell-derived β-TCP and PAA showed higher porosity and significantly higher DTS than blocks made from commercial β-TCP. Decreasing β-TCP content increased porosity but decreased DTS.
Characterization of limestone-based beta-tricalcium phosphate /polyacrylic acid blocks as bone graft candidates Dianayu Noviani Soesianto Putri; Tansza Setiana Putri; Abida Zhafira Inayasary; Eddy; Thet Thet Swe
Dental Journal (Majalah Kedokteran Gigi) Vol. 59 No. 3 (2026): September
Publisher : Faculty of Dental Medicine, Universitas Airlangga https://fkg.unair.ac.id/en

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.20473/j.djmkg.v59.i3.p248-253

Abstract

Background: Bone grafting is a widely used technique in dentistry to repair bone defects. Limestone-based beta-tricalcium phosphate (β-TCP) holds potential as an alternative bone graft material when combined with polyacrylic acid (PAA) to produce composite blocks. Purpose: The aim of the study was to evaluate the characteristics, including porosity, diametral tensile strength (DTS), morphology, macropore size, and micropore size of block composites made from limestone-based β-TCP and PAA as well as the effect of their composition on these characteristics. Methods: This was a laboratory experimental study employing a post-test-only control group design. The study groups consisted of a negative control (pure PAA powder), a positive control (PAA + commercial β-TCP), and three treatment groups with variations in the mixture of limestone β-TCP and PAA: 60:40, 50:50, and 40:60 (%w/w). The samples were characterized for porosity using volume and weight measurements, for DTS using a universal testing machine, and for morphology using scanning electron microscopy. Results: Limestone-based β-TCP produced composites with higher porosity and DTS compared to pure PAA samples and commercial β-TCP. Increasing the β-TCP content generally increased porosity and DTS, although porosity decreased in the 40:60 group. The composite blocks predominantly exhibited closed porosity, with macropore size ranging from 81.30 µm to 198.40 µm. Conclusion: Increasing the proportion of limestone-based β-TCP results in higher porosity and DTS values than commercial β-TCP, partly due to particle size contributing to higher values. The composite blocks are porous, while pure PAA has a smooth, pore-free surface. However, further optimization is still required.