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Full Length Articles

Porous structure engineering of bioceramic hydroxyapatite-based scaffolds using PVA, PVP, and PEO as polymeric porogens

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Pages 161-169 | Received 13 Oct 2018, Accepted 09 Feb 2019, Published online: 30 Mar 2019

References

  • Aksakal B, Yildirim OS, Gul H. Metallurgical failure analysis of various implant materials used in orthopedic applications. J Fail Anal Prev. 2004;4:17–23.
  • Vallet-Regi M, Gonzalez-Calbet JM. Calcium phosphate as substitution of bone tissues. Prog Solid State Chem. 2004;32:1–31.
  • Tripathi G, Basu B. A porous hydroxyapatite scaffold for bone tissue engineering: physico-mechanical and biological evaluations. Ceram Int. 2012;38:341–349.
  • Leelatawonchai P, Laonapakul T. Preparation and characterization of calcium sources from golden apple snail shell for naturally based biomaterials. Adv Mater Res. 2014;931–932:370–374.
  • Udomkan N, Limsuwan P. Temperature effects on freshwater snail shells: Pomacea canaliculata Lamarck as investigated by XRD, EDX, SEM, and FTIR techniques. Mater Sci Eng C. 2007;28:316–319.
  • Minton J Design, fabrication, and analysis of polymer scaffolds for use in bone tissue engineering [master’s thesis]. Ohio: Miami University; 2013.
  • Angela NMH, Aminuddin BS, Tan KK, et al. Comparison of bioengineered human bone construct from four sources of osteogenic cells. J Ortho Sci. 2005;10:192–199.
  • Tan KK, Shamsul BS, Aminuddin BS, et al. Bone graft substitute hydroxyapatite scaffold seeded with tissue engineered autologous osteoprogenitor cells in spinal fusion: early result in sheep as a model. Med J Malaysia. 2005;60:53–58.
  • LeGeros RZ, Ben-Nissan B. Introduction to synthetic and biologic apatitites. In: Ben-Nissan B, editor. Advance in calcium phosphate biomaterials. Heidelberg: Springer; 2014. p. 1–17.
  • Ratner BD. Biomaterials Science: an introduction to materials in medicine. San Diego: Elsevier Academic Press; 2004.
  • Wang J, Shaw LL. Nanocrytalline hydroxyapatite with simultaneous enhacements in hardness and toughness. Biomaterials. 2009;30:6565–6572.
  • Brook RJ. Pore-grain boundary interactions and grain growth. J Am Ceram Soc. 1969;52:56–57.
  • Sulaiman SB, Keong TK, Cheng CH, et al. Tricalcium phosphate/hydroxyapatite (TCP-HA) bone scaffold as potential candidate for the formation of tissue engineered bone. Indian J Med Res. 2013;137:1093–1101.
  • Asaoka T, Ohtake S, Furukawa KS, et al. Development of bioactive porous -TCP/HAp beads for bone tissue engineering. J Biomed Mater Res. 2013;101:1552–4965.
  • Gallineti S, Canal C, Ginebra M, et al. Development and characterization of biphasic hydroxyapatite/β-TCP cements. J Am Ceram Soc. 2014;97:1065–1073.
  • De Jonghe LC, Rahaman MN. Sintering of ceramics. In: Somiya S editor. Handbook of advance ceramics. California: Academic Press; 2003. p. 187–264.
  • Kang SJL. Sintering: densification, graingrowth, and microstructure. Amsterdam: Elsevier; 2005.