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2009 | Vol. 39, nr 4 | 825-831
Tytuł artykułu

Surface properties in titanium with hydroxyapatite coating

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Wybrane pełne teksty z tego czasopisma
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Due to its wide range of possible applications in current technology, hydroxyapatite, as a biomaterial, has been of great interest to scholars. Improvement in mechanical properties can be achieved by addition of zirconia, partially stabilized by yttrium, into a resistant oxide phase. The present study describes the microstructure and phases which are typical of composite coatings after plasma spraying.
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Czasopismo
Rocznik
Strony
825-831
Opis fizyczny
bibliogr. 12 poz.,
Twórcy
autor
  • Institute of Materials Engineering, Częstochowa University of Technology, Armii Krajowej 19, 42-200 Częstochowa, Poland
Bibliografia
  • [1] PICONI C., MACCAURO G., Zirconia as a ceramic biomaterial, Biomaterials 20(1), 1999, pp. 1–25.
  • [2] HARTMANN P., JÄGER C., BARTH ST., VOGEL J., MEYER K., Solid state NMR, X-ray diffraction, and infrared characterization of local structure in heat-treated oxyhydroxyapatite microcrystals: an analog of the thermal decomposition of hydroxyapatite during plasma-spray procedure, Journal of Solid State Chemistry 160(2), 2001, pp. 460–468.
  • [3] KHALIL ABDELRAZEK KHALIL, SUG WON KIM, HAK YONG KIM, Consolidation and mechanical properties of nanostructured hydroxyapatite–(ZrO2 + 3 mol%Y2O3) bioceramics by high- frequency induction heat sintering, Materials Science and Engineering 456(1–2), 2007, pp. 368–372.
  • [4] CHEVALIER J.J., DEVILLE S., MUNCH E., JULLIAN R., LAIR F., Critical effect of cubic phase on aging in 3 mol% yttria-stabilized zirconia ceramics for hip replacement prothesis, Biomaterials 25(24), 2004, pp. 5539–5545.
  • [5] INUZUKA M., NAKAMURA S., KISHI S., YOSHIDA K., HASHIMOTO K., TODA Y., YAMASHITA K., Hydroxyapatite-doped zirconia for preparation of biomedical composites ceramics, Solid State Ionics 172(1–4), 2004, pp. 509–513.
  • [6] YUN-MO SUNG, DAE-HEE KIM, Crystallization characteristics of yttria-stabilized zirconia/ hydroxyapatite composite nanopowder, Journal of Crystal Growth 254(3–4), 2003, pp. 411–417.
  • [7] YOSHIDA K., HASHIMOTO K., TODA Y., UDAGAWA S., KANAZAWA T., Fabrication of structure--controlled hydroxyapatite/zirconia composite, Journal of the European Ceramic Society 26(4–5), 2006, pp. 515–518.
  • [8] WUNDERLICH B., Macromolecular Physic, Vol. 2, Academic Press, New York, 1973.
  • [9] SILVA C.C., SOMBRA A.S.B., Raman spectroscopy measurements of hydroxyapatite obtained by mechanical alloying, Journal of Physics and Chemistry of Solids 65(5), 2004, pp. 1031–1033.
  • [10] PAPPAS D., SMITH B.W., WINEFORDNER J.D., Raman spectroscopy in bioanalysis, Talanta 51(1), 2000, pp. 131–144.
  • [11] SCHRADER B., DIPPEL B., ERB I., KELLER S., LOCHTE T., SCHULZ H., TATSCH E., WESSEL S., NIR Raman spectroscopy in medicine and biology: results and aspects, Journal of Molecular Structure 480–481, 1999, pp. 21–32.
  • [12] LEI FU, KHIAM AIK KHOR, JOO PENG LIM, Yttria stabilized zirconia reinforced hydroxyapatite coatings, Surface and Coatings Technology 127(1), 2000, pp. 66–75.
Typ dokumentu
Bibliografia
Identyfikatory
Identyfikator YADDA
bwmeta1.element.baztech-article-BPW7-0012-0103
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