Synthesis, Structural Characterization, Degradation Rate, and Biocompatibility of Magnesium-Carbonate Apatite (Mg-Co3Ap) Composite and Its Potential as Biodegradable Orthopaedic Implant Base Material

Suitable biomechanical properties with a degradation rate parallel to normal bone healing time are vital characteristics for biodegradable implant material in orthopaedics. Magnesium (Mg) is a natural micronutrient as well as biodegradable metal with biomechanical characteristics close to that of th...

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Main Authors: Ahmad Jabir Rahyussalim, Aldo Fransiskus Marsetio, Achmad Fauzi Kamal, Sugeng Supriadi, Iwan Setyadi, Pancar Muhammad Pribadi, Wildan Mubarok, Tri Kurniawati
Format: Article
Language:English
Published: Hindawi Limited 2021-01-01
Series:Journal of Nanomaterials
Online Access:http://dx.doi.org/10.1155/2021/6615614
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spelling doaj-395d149255164690b37f06c64d25b9422021-03-29T00:09:39ZengHindawi LimitedJournal of Nanomaterials1687-41292021-01-01202110.1155/2021/6615614Synthesis, Structural Characterization, Degradation Rate, and Biocompatibility of Magnesium-Carbonate Apatite (Mg-Co3Ap) Composite and Its Potential as Biodegradable Orthopaedic Implant Base MaterialAhmad Jabir Rahyussalim0Aldo Fransiskus Marsetio1Achmad Fauzi Kamal2Sugeng Supriadi3Iwan Setyadi4Pancar Muhammad Pribadi5Wildan Mubarok6Tri Kurniawati7Department of Orthopaedic and TraumatologyDepartment of Orthopaedic and TraumatologyDepartment of Orthopaedic and TraumatologyDepartment of Mechanical EngineeringDepartment of Mechanical EngineeringDepartment of Mechanical EngineeringDivision of Chemical EngineeringStem Cells and Tissues Engineering Research ClusterSuitable biomechanical properties with a degradation rate parallel to normal bone healing time are vital characteristics for biodegradable implant material in orthopaedics. Magnesium (Mg) is a natural micronutrient as well as biodegradable metal with biomechanical characteristics close to that of the human bone, while carbonate apatite (CO3Ap) is a biological apatite with good osteoconductivity which allows bone healing without forming fibrotic tissue. We fabricated a Mg-CO3Ap composite with various content ratios by powder metallurgy, various milling times (3, 5, and 7 hours) at 200 RPM, warm compaction at 300°C and pressure of 265 MPa, sintering at 550°C, holding time of 1 hour, heating rate of 5°C/minutes, and room atmosphere cooling. Specimens were successfully created and had a density comparable to that of the human bone (1.95-2.13 g/cm3). Good biocompatibility was found on Mg-10% CO3Ap composite (66.67% of viable cells). Nevertheless, its biomechanical properties and corrosion resistance were inferior to the human bone. Additionally, the materials of the composites make the surrounding environment alkaline. Interparticle consolidation and grain size were dissatisfactory due to microstructural pores presumably formed by the Mg(OH)2 layer and oxidation process during sintering. However, alkaline condition caused by the material corrosion by-product might be beneficial for bone healing and wound healing process. Modifications on fabrication parameters are needed to improve interparticle consolidation, refine grain size, improve biomechanical strength, reduce corrosion products, and improve the degradation rate.http://dx.doi.org/10.1155/2021/6615614
collection DOAJ
language English
format Article
sources DOAJ
author Ahmad Jabir Rahyussalim
Aldo Fransiskus Marsetio
Achmad Fauzi Kamal
Sugeng Supriadi
Iwan Setyadi
Pancar Muhammad Pribadi
Wildan Mubarok
Tri Kurniawati
spellingShingle Ahmad Jabir Rahyussalim
Aldo Fransiskus Marsetio
Achmad Fauzi Kamal
Sugeng Supriadi
Iwan Setyadi
Pancar Muhammad Pribadi
Wildan Mubarok
Tri Kurniawati
Synthesis, Structural Characterization, Degradation Rate, and Biocompatibility of Magnesium-Carbonate Apatite (Mg-Co3Ap) Composite and Its Potential as Biodegradable Orthopaedic Implant Base Material
Journal of Nanomaterials
author_facet Ahmad Jabir Rahyussalim
Aldo Fransiskus Marsetio
Achmad Fauzi Kamal
Sugeng Supriadi
Iwan Setyadi
Pancar Muhammad Pribadi
Wildan Mubarok
Tri Kurniawati
author_sort Ahmad Jabir Rahyussalim
title Synthesis, Structural Characterization, Degradation Rate, and Biocompatibility of Magnesium-Carbonate Apatite (Mg-Co3Ap) Composite and Its Potential as Biodegradable Orthopaedic Implant Base Material
title_short Synthesis, Structural Characterization, Degradation Rate, and Biocompatibility of Magnesium-Carbonate Apatite (Mg-Co3Ap) Composite and Its Potential as Biodegradable Orthopaedic Implant Base Material
title_full Synthesis, Structural Characterization, Degradation Rate, and Biocompatibility of Magnesium-Carbonate Apatite (Mg-Co3Ap) Composite and Its Potential as Biodegradable Orthopaedic Implant Base Material
title_fullStr Synthesis, Structural Characterization, Degradation Rate, and Biocompatibility of Magnesium-Carbonate Apatite (Mg-Co3Ap) Composite and Its Potential as Biodegradable Orthopaedic Implant Base Material
title_full_unstemmed Synthesis, Structural Characterization, Degradation Rate, and Biocompatibility of Magnesium-Carbonate Apatite (Mg-Co3Ap) Composite and Its Potential as Biodegradable Orthopaedic Implant Base Material
title_sort synthesis, structural characterization, degradation rate, and biocompatibility of magnesium-carbonate apatite (mg-co3ap) composite and its potential as biodegradable orthopaedic implant base material
publisher Hindawi Limited
series Journal of Nanomaterials
issn 1687-4129
publishDate 2021-01-01
description Suitable biomechanical properties with a degradation rate parallel to normal bone healing time are vital characteristics for biodegradable implant material in orthopaedics. Magnesium (Mg) is a natural micronutrient as well as biodegradable metal with biomechanical characteristics close to that of the human bone, while carbonate apatite (CO3Ap) is a biological apatite with good osteoconductivity which allows bone healing without forming fibrotic tissue. We fabricated a Mg-CO3Ap composite with various content ratios by powder metallurgy, various milling times (3, 5, and 7 hours) at 200 RPM, warm compaction at 300°C and pressure of 265 MPa, sintering at 550°C, holding time of 1 hour, heating rate of 5°C/minutes, and room atmosphere cooling. Specimens were successfully created and had a density comparable to that of the human bone (1.95-2.13 g/cm3). Good biocompatibility was found on Mg-10% CO3Ap composite (66.67% of viable cells). Nevertheless, its biomechanical properties and corrosion resistance were inferior to the human bone. Additionally, the materials of the composites make the surrounding environment alkaline. Interparticle consolidation and grain size were dissatisfactory due to microstructural pores presumably formed by the Mg(OH)2 layer and oxidation process during sintering. However, alkaline condition caused by the material corrosion by-product might be beneficial for bone healing and wound healing process. Modifications on fabrication parameters are needed to improve interparticle consolidation, refine grain size, improve biomechanical strength, reduce corrosion products, and improve the degradation rate.
url http://dx.doi.org/10.1155/2021/6615614
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