Araştırma Makalesi

CHARACTERISATION OF 3D PRINTED HYDROXYAPITATE POWDER (HAp) FILLED POLYLACTIC ACID (PLA) COMPOSITES

Cilt: 6 Sayı: 3 31 Aralık 2022
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CHARACTERISATION OF 3D PRINTED HYDROXYAPITATE POWDER (HAp) FILLED POLYLACTIC ACID (PLA) COMPOSITES

Öz

Biomaterials are used in the treatment of advanced orthopedic diseases. Hydroxyapatite (HA), a bioceramic material, is important in the calcium phosphate family. Since hydroxyapatite exhibits low mechanical properties, it is used together with polylactic acid (PLA), which has biodegradable properties. In this study, HA was obtained by the combustion method and its morphological properties were analyzed by scanning electron microscope (SEM) and chemical analyzes by X-ray spectrometry. 3D mechanical test specimens were produced by the Fused Deposition Melting (FDM) technique using PLA-HA composite filaments by using the obtained HA as an additive material. Thermoplastic elastomer was used to examine the effect of compatibilizer in PLA and HA composite materials. Physical (SEM), thermal (thermogravimetric analysis, TGA), and mechanical properties (tensile and compression tests) of PLA-HA composite materials were investigated. According to the results obtained, TPE may have improved the chemical bonds that will form in PLA-HA composite materials. With the new bonds formed and the regular distribution of Hydroxyapatite, the interfacial bonds in PLA+HAP+TPE are better than the others and their thermal stability is more substantial. Due to this thermal stability, at least a percentage weight (70%) loss was seen in PLA+HAP+TPE. When the mechanical properties are examined, the tensile and compressive strength values of PLA+HAP+TPE composites are 29.2% and 12.5% higher than those of PLA+HAP composites, respectively.

Anahtar Kelimeler

Proje Numarası

FYL-2020-8621.

Kaynakça

  1. 1. Navarro, M., Michiardi, A., Castano, O., Planell, J.A., “Biomaterials in orthopaedics”, J R Soc Interface, Vol. 5, Pages 1137–1158, 2008.
  2. 2. Takahashi, Y., Yamamoto, M., Tabata Y., “Osteogenic differentiation of mesenchymal stem cells in biodegradable sponges composed of gelatin and β-tricalcium phosphate”, Biomaterials, Vol. 26, Issue 17, Pages 3587–3596, 2005.
  3. 3. Fu C., et al. “Antimicrobial silver-HAp composite coatings through two-stage electrochemical synthesis”, Surf Coat Technol, Vol. 301, Pages 13–19, 2016.
  4. 4. Dorozhkin, SV., “Calcium orthophosphate deposits: preparation, properties and biomedical applications”. Mater Sci. Eng. C., Vol. 55, Pages 272–326, 2015.
  5. 5. Akindoyo, J.O., Beg, M.D.H., Ghazali, S., Heim, H.P., Feldmann, M., “Effects of surface modification on dispersion, mechanical, thermal and dynamic mechanical properties of injection molded PLA-hydroxyapatite composites” Composites: Part A, Vol. 103, Pages 96-105, 2017.
  6. 6. Sun, F., Zhou, H., Lee, J., “Various preparation methods of highly porous hydroxyapatite/polymer nanoscale biocomposites for bone regeneration”, Acta Biomater 2011, Vol. 7, Issue 11, Pages 3813–3828, 2011.
  7. 7. Auras, R., Lim, L.T., Selk, S.E.M., Tsuji, H. “Polylactic Acid, Synthesis, Structures, Properties, Processing and Applications”, Wıley, NewYork, 2010.
  8. 8. Wang, T., Chow, L.C., Frukhtbeyn, S.A., Ting, A.H., Dong, Q., Yang, M., Mitchell, J.W., “Improve the strength of PLA-HA composite through the use of surface initiated polymerization and phosphonic acid coupling agent”, Journal of Research of the National Institute of Standards and Technology, Vol. 116 Issue 5, Pages 785–796, 2011.

Ayrıntılar

Birincil Dil

İngilizce

Konular

Biyomateryaller

Bölüm

Araştırma Makalesi

Yayımlanma Tarihi

31 Aralık 2022

Gönderilme Tarihi

11 Eylül 2022

Kabul Tarihi

27 Aralık 2022

Yayımlandığı Sayı

Yıl 2022 Cilt: 6 Sayı: 3

Kaynak Göster

APA
Yerli, H. K., Cava, K., & Aslan, M. (2022). CHARACTERISATION OF 3D PRINTED HYDROXYAPITATE POWDER (HAp) FILLED POLYLACTIC ACID (PLA) COMPOSITES. International Journal of 3D Printing Technologies and Digital Industry, 6(3), 540-547. https://doi.org/10.46519/ij3dptdi.1172937
AMA
1.Yerli HK, Cava K, Aslan M. CHARACTERISATION OF 3D PRINTED HYDROXYAPITATE POWDER (HAp) FILLED POLYLACTIC ACID (PLA) COMPOSITES. IJ3DPTDI. 2022;6(3):540-547. doi:10.46519/ij3dptdi.1172937
Chicago
Yerli, Hatice Kübra, Kutay Cava, ve Mustafa Aslan. 2022. “CHARACTERISATION OF 3D PRINTED HYDROXYAPITATE POWDER (HAp) FILLED POLYLACTIC ACID (PLA) COMPOSITES”. International Journal of 3D Printing Technologies and Digital Industry 6 (3): 540-47. https://doi.org/10.46519/ij3dptdi.1172937.
EndNote
Yerli HK, Cava K, Aslan M (01 Aralık 2022) CHARACTERISATION OF 3D PRINTED HYDROXYAPITATE POWDER (HAp) FILLED POLYLACTIC ACID (PLA) COMPOSITES. International Journal of 3D Printing Technologies and Digital Industry 6 3 540–547.
IEEE
[1]H. K. Yerli, K. Cava, ve M. Aslan, “CHARACTERISATION OF 3D PRINTED HYDROXYAPITATE POWDER (HAp) FILLED POLYLACTIC ACID (PLA) COMPOSITES”, IJ3DPTDI, c. 6, sy 3, ss. 540–547, Ara. 2022, doi: 10.46519/ij3dptdi.1172937.
ISNAD
Yerli, Hatice Kübra - Cava, Kutay - Aslan, Mustafa. “CHARACTERISATION OF 3D PRINTED HYDROXYAPITATE POWDER (HAp) FILLED POLYLACTIC ACID (PLA) COMPOSITES”. International Journal of 3D Printing Technologies and Digital Industry 6/3 (01 Aralık 2022): 540-547. https://doi.org/10.46519/ij3dptdi.1172937.
JAMA
1.Yerli HK, Cava K, Aslan M. CHARACTERISATION OF 3D PRINTED HYDROXYAPITATE POWDER (HAp) FILLED POLYLACTIC ACID (PLA) COMPOSITES. IJ3DPTDI. 2022;6:540–547.
MLA
Yerli, Hatice Kübra, vd. “CHARACTERISATION OF 3D PRINTED HYDROXYAPITATE POWDER (HAp) FILLED POLYLACTIC ACID (PLA) COMPOSITES”. International Journal of 3D Printing Technologies and Digital Industry, c. 6, sy 3, Aralık 2022, ss. 540-7, doi:10.46519/ij3dptdi.1172937.
Vancouver
1.Hatice Kübra Yerli, Kutay Cava, Mustafa Aslan. CHARACTERISATION OF 3D PRINTED HYDROXYAPITATE POWDER (HAp) FILLED POLYLACTIC ACID (PLA) COMPOSITES. IJ3DPTDI. 01 Aralık 2022;6(3):540-7. doi:10.46519/ij3dptdi.1172937

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