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Review

Recent advances in the design of titanium alloys for orthopedic applications

Pages 741-748 | Published online: 09 Jan 2014

References

  • Athanasou NA. The pathology of joint replacement. Curr. Diag. Pathol. 8, 26–32 (2002).
  • Porte-Durrieu MC, Guillemot F, Pallu S et al. Cyclo (DfKRG) peptide grafting onto Ti-6Al-4V: physical characterization and interest towards human osteoprogenitor cells adhesion. Biomaterials 25, 4837–4846 (2004).
  • Xiao SJ, Kenausis G, Textor M. Biochemical modification of titanium surfaces. In: Titanium in Medicine. Brunette DM, Tengvall P, Textor M, Thomsen P (Eds), Springer-Verlag, Berlin, Germany, 417–455 (2001).
  • McGovern TE, Black J, Jacobs JJ, Graham RM, LaBerge M. In vivo wear of Ti-6Al-4V femoral heads: a retrieval study. J. Biomed. Mater. Res. 32, 447–457 (1996).
  • Galletti PM. The concept of bioartificial endocrine organs. Hybrid Artif. Organs Bordeaux 3–12 (1989).
  • Sedel L. Evolution of alumina-on-alumina implants. Clin. Orthop. Relat. Res. 379, 48–54 (2000).
  • Niinomi M. Recent metallic materials for biomedical applications. Metall. Mater. Trans. A. 33A, 477–486 (2002).
  • Niinomi M. Recent research and development in titanium alloys for biomedical applications and healthcare goods. Sci. Technol. Adv. Mater. 4, 445–454 (2003).
  • Breme J, Schade W. Phase transformation in TiAl5Fe2.5 alloy. In: Titanium, Science and Technology. Lütjering G, Zwicker U, Bunk W (Eds), DGM, 1487–1494 (1985).
  • Seraphin L. Réponse des alliages de titane aux traitements thermiques. Mem. Etud. Sci. Rev. Met. LXII, 291–304 (1965).
  • Weiss I, Semiatin SL. Thermomechanical processing of β titanium alloys – an overview. Mat. Sci. Eng. A. Struct. 243, 46–65 (1998).
  • Breme J, Helsen JA. Selection of materials. In: Metals as Biomaterials. Helsen JA, Breme HJ (Eds), John Wiley & Sons, USA, 1–36 (1998).
  • Long M, Rack HJ. Titanium alloys in total joint replacement – a materials science perspective. Biomaterials 19, 1621–1639 (1998).
  • Eylon D. A review of β titanium alloys. Mem. Etud. Sci. Rev. Met. 75–82 (1994).
  • Meyrueis P, Cazenave A, Zimmermann R. Biomecanique de l'os. Application au traitement des fractures: biomechanics of bones and treatment of fractures. EMC. Rhumatologie-Orthopedie 1, 64–93 (2004).
  • Long M, Crooks R, Rack HJ. High-cycle fatigue performance of solution-treated metastable β titanium alloys. Acta Mater. 47, 661–669 (1999).
  • Tirrell M, Kokkoli E, Biesalski M. The role of surface science in bioengineered materials. Surf. Sci. 500, 61–83 (2002).
  • Steinemann SG. Surface reaction of titanium in living tissue. In: Surface Performance of Titanium. Gregory JK, Rack HJ, Eylon D (Eds), The Minerals, Metals & Materials Society, San Diego, USA, 33–46 (1997).
  • Hanawa T. In vivo metallic biomaterials and surface modification. Mater. Sci. Eng. A. 267, 260–267 (1999).
  • Schenk R. The corrosion properties of titanium and titanium alloys. In: Titanium in Medicine. Brunette DM, Tengvall P, Textor M, Thomsen P (Eds), Springer-Verlag, Berlin, Germany, 145–170 (2001).
  • Pourbaix M. Electrochemical corrosion of metallic biomaterials. Biomaterials 5, 122–134 (1984).
  • Zaffe D, Bertoldi C, Consolo U. Element release from titanium devices used in oral and maxillofacial surgery. Biomaterials 24, 1093–1099 (2003).
  • Bundy KJ. Corrosion and other electrochemical aspects of biomaterials. Crit. Rev. Biomed. Eng. 22, 139–151 (1994).
  • Hanawa T. Evaluation techniques of metallic biomaterials in vitro. Sci. Technol. Adv. Mater. 3, 289–295 (2002).
  • Hiromoto S, Noda K, Hanawa T. Development of electrolytic cell with cell-culture for metallic biomaterials. Corrosion Sci. 44, 955–965 (2002).
  • Pan J, Thierry D, Leygraf C. Electrochemical impedance spectroscopy study of the passive oxide film on titanium for implant application. Electrochim. Acta 41, 1143–1153 (1996).
  • Metikos-Hukovic M, Kwokal A, Piljac J. The influence of niobium and vanadium on passivity of titanium-based implants in physiological solution. Biomaterials 24, 3765–3775 (2003).
  • Banerjee R, Nag S, Stechschulte J, Fraser HL. Strengthening mechanisms in Ti-Nb-Zr-Ta and Ti-Mo-Zr-Fe orthopaedic alloys. Biomaterials 25, 3413–3419 (2004).
  • Hao YL, Niinomi M, Kuroda D et al. Aging response of the Young's modulus and mechanical properties of Ti-29Nb-13Ta-4.6Zr for biomedical applications. Metall. Mater. Trans. A. 34A, 1007–1012 (2003).
  • Ankem S, Greene CA. Recent developments in microstructure/property relationships of β titanium alloys. Mat. Sci. Eng. A. Struct. 263, 127–131 (1999).
  • Vassel A. Microstructural instabilities in β titanium alloys. Beta Titanium Alloys. Denver, USA (1993).
  • Hadjadj L. Etude à la sonde atomique d'alliages à base titane. 150 (1988).
  • Prima F. Etude métallurgique d'un nouvel alliage de titane b-métastable. 217 (2000).
  • Polmear IJ. Light Alloys: Metallurgy of the Light Metals. Edward Arnold, London, UK (1989).
  • Morinaga M, Kato M, Kamimura T et al. Theoretical design of β-type titanium alloys. Seventh World Conference on Titanium. 217–224 (1992).
  • Kuroda D, Kawasaki H, Yamamoto A, Hiromoto S, Hanawa T. Mechanical properties and microstructures of new Ti-Fe-Ta and Ti-Fe-Ta-Zr system alloys. Mater. Sci. Eng. C. 25, 312–320 (2005).
  • Song Y, Xu DS, Yang R, Li D, Hu ZQ. Theoretical investigation of ductilizing effects of alloying elements on TiAl. Intermetallics 6, 157–165 (1998).
  • Song A, Xu DS, Yang R et al. Theoretical study of the effects of alloying elements on the strength and modulus of β-type bio-titanium alloys. Mat. Sci. Eng. A. Struct. 260, 269–274 (1999).
  • Kuroda D, Niinomi M, Morinaga M, Kato Y, Yashiro T. Design and mechanical properties of new β type titanium alloys for implant materials. Mat. Sci. Eng. A. Struct. 243, 244–249 (1998).
  • Akahori T, Niinomi M, Fukui H, Ogawa M, Toda H. Improvement in fatigue characteristics of newly developed β type titanium alloy for biomedical applications by thermo-mechanical treatments. Mater. Sci. Eng. C. 25, 248–254 (2005).
  • Prima F, Vermaut P, Thibon I et al. Nanostructured metastable β titanium based alloy. J. Metastable Nanocrytalline Mater. 13, 304–314 (2002).
  • Guillemot F, Prima F, Bareille R et al. Design of new titanium alloys for orthopaedic applications. Med. Bio. Eng. Comp. 42 (2004).
  • Lin DJ, Chern Lin JH, Ju CP. Effect of omega phase on deformation behavior of Ti-7.5Mo-xFe alloys. Mater. Chem. Phys. 76, 191–197 (2002).
  • Lin DJ, Chern Lin JH, Ju CP. Structure and properties of Ti-7.5Mo-xFe alloys. Biomaterials 23, 1723–1730 (2002).
  • Wang K, Gustavson L, Dumbleton J. The characterization of Ti-12Mo-6Zr-2Fe. In: Beta Titanium Alloys in the 1990s. Eylon D, Boyer RR, Koss DA (Eds), The Minerals, Metals and Materials Society (1993).
  • Coatrieux J-L, Bansard J-Y, Kerbaol M. De l'usage de la bibliometrie pour l'evaluation, ou comment devaluer des disciplines ? ITBM-RBM 25, 61–66 (2004).

Website

  • TMZF® Alloy http://www.europe.stryker.com/st_pdf_ltmzfb.pdf (Accessed October 2005)

Patent

  • Ahmed T, Rack HJ, Patent 5,871,595. Osteonics Corp., NJ, USA (1999).

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