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Compressive strength enhancement of artificial bone using hydroxyapatite/fish‑collagen nanocomposite
Myung Chul Chang, Byung‑Gi Kim, Jae‑Ho Whang
J. Korean Ceram. Soc.. 2020;57(3):321-330.   Published online 2020 March 31    DOI: https://doi.org/10.1007/s43207-020-00026-z

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Compressive strength enhancement of artificial bone using hydroxyapatite/fish-collagen nanocomposite
Journal of the Korean Ceramic Society. 2020;57(3):321-330   Crossref logo
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Preparation of Injectable Hydroxyapatite/Collagen Nanocomposite Artificial Bone
Key Engineering Materials. 2011;493-494:689-692   Crossref logo
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Mechanical Strength Improvement of Apatite Cement Using Hydroxyapatite/Collagen Nanocomposite
Key Engineering Materials. 2016;720:167-172   Crossref logo
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<i>In Vitro</i> Osteoclast Differentiation of Bone Marrow Cells on Hydroxyapatite/Collagen Self-Organized Bone-Like Nanocomposite Disk
Key Engineering Materials. 2008;396-398:449-452   Crossref logo
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Compressive and bone-bonding strength of hydroxyapatite thermal decomposition product implanted in the femur of rabbit as a bioactive ceramic bone cement
Biomaterials. 1995;16(12):937-943   Crossref logo
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Enhanced bone formation onto the bone surface using a hydroxyapatite/collagen bone‐like nanocomposite
Journal of Biomedical Materials Research Part B: Applied Biomaterials. 2019;108(2):391-398   Crossref logo
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Fabrication of Gentamicin-Loaded Hydroxyapatite/Collagen Bone-Like Nanocomposite for Anti-Infection Bone Void Fillers
International Journal of Molecular Sciences. 2020;21(2):551   Crossref logo
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Fabrication and characterization of hydroxyapatite/collagen bone-like nanocomposite through a self-assembly method
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Compressive strength of calcium carbonate and hydroxyapatite implants after bone-marrow-induced osteogenesis
Biomaterials. 1998;19(1-3):223-227   Crossref logo
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Normal vertebral body size and compressive strength: Relations to age and to vertebral and iliac trabecular bone compressive strength
Bone. 1986;7(3):207-212   Crossref logo
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