SURFACE CHARACTERISTICS AND BIOACTIVITY OF ANODICALLY OXIDIZED TITANIUM SURFACES

양극산화에 의한 티타늄 산화막의 표면 특성 및 생체 활성에 관한 연구

  • Lee, Sang-Han (Department of Prosthodontics, College of Dentistry, Dankook University) ;
  • Cho, In-Ho (Department of Prosthodontics, College of Dentistry, Dankook University)
  • 이상한 (단국대학교 치과대학 보철학교실) ;
  • 조인호 (단국대학교 치과대학 보철학교실)
  • Published : 2007.02.28

Abstract

Statement of problem: Recently, anodic oxidation of cp-titanium is a popular method for treatment of titanium implant surfaces. It is a relatively easy process, and the thickness, structure, composition, and the microstructure of the oxide layer can be variably modified. Moreover the biological properties of the oxide layer can be controlled. Purpose: In this study, the roughness, microstructure, crystal structure of the variously treated groups (current, voltage, frequency, electrolyte, thermal treatment) were evaluated. And the specimens were soaked in simulated body fluid (SBF) to evaluate the effects of the surface characteristics and the oxide layers on the bioactivity of the specimens which were directly related to bone formation and integration. Materials and methods: Surface treatments consisted of either anodization or anodization followed thermal treatment. Specimens were divided into seven groups, depending on their anodizing treatment conditions: constant current mode (350V for group 2), constant voltage mode (155V for group 3), 60 Hz pulse series (230V for group 4, 300V for group 5), and 1000 Hz pulse series (400V for group 6, 460V for group 7). Non-treated native surfaces were used as controls (group 1). In addition, for the purpose of evaluating the effects of thermal treatment, each group was heat treated by elevating the temperature by $5^{\circ}C$ per minute until $600^{\circ}C$ for 1 hour, and then bench cured. Using scanning electron microscope (SEM), porous oxide layers were observed on treated surfaces. The crystal structures and phases of titania were identified by thin-film x-ray diffractmeter (TF-XRD). Atomic force microscope (AFM) was used for roughness measurement (Sa, Sq). To evaluate bioactivity of modified titanium surfaces, each group was soaked in SBF for 168 hours (1 week), and then changed surface characteristics were analyzed by SEM and TF-XRD. Results: On basis of our findings, we concluded the following results. 1. Most groups showed morphologically porous structures. Except group 2, all groups showed fine to coarse convex structures, and the groups with superior quantity of oxide products showed superior morphology. 2. As a result of combined anodization and thermal treatment, there were no effects on composition of crystalline structure. But, heat treatment influenced the quantity of formation of the oxide products (rutile / anatase). 3. Roughness decreased in the order of groups 7,5,2,3,6,4,1 and there was statistical difference between group 7 and the others (p<0.05), but group 7 did not show any bioactivity within a week. 4. In groups that implanted ions (Ca/P) on the oxide layer through current and voltage control, showed superior morphology, and oxide products, but did not express any bioactivity within a week. 5. In group 3, the oxide layer was uniformly organized with rutile, with almost no titanium peak. And there were abnormally more [101] orientations of rutile crystalline structure, and bonelike apatite formation could be seen around these crystalline structures. Conclusion: As a result of control of various factors in anodization (current, voltage, frequency, electrolytes, thermal treatment), the surface morphology, micro-porosity, the 2nd phase formation, crystalline structure, thickness of the oxide layer could be modified. And even more, the bioactivity of the specimens in vitro could be induced. Thus anodic oxidation can be considered as an excellent surface treatment method that will able to not only control the physical properties but enhance the biological characteristics of the oxide layer. Furthermore, it is recommended in near future animal research to prove these results.

Keywords

References

  1. Albrektsson T, Branemark P-I, Hasson HA, Lindstrom J. Osseointegrated titanium implants. Acta Orthp Scand 1981;52:155-170 https://doi.org/10.3109/17453678108991776
  2. Kim WS, Cho IH. On the surface characteristics and stability of implant treated with anodizing oxidation. 2003; College of dentistry, Dankook university, Ph. D thesis
  3. Lim YJ, Oshida Y, Andres CJ, Barco MT. Surface characterizations of variously treated titanium materials. Int J Oral Maxillofac Implants 2001;16:333-342
  4. Lim YJ. Effects of heat treatment on the surface characteristics of titanium for implant. 2004; College of dentistry, Seoul national university, Ph. D thesis
  5. Lim YJ. Effects of heat treatment on the surface characteristics of titanium for implant. 2004; College of dentistry, Seoul national university, Ph. D thesis
  6. Yang SW, Cho IH. On the effect of different surface treatment on the osseointegration and stability of implants. 2003; College of dentistry, Dankook university, Ph. D thesis
  7. Lee JM, Kim YS, Kim CW, Jang KS, Lim YJ. A study on the responses of osteoblasts to various surface-treated titanium. J Korean Acad Prosthodont 2003;42:307-319
  8. Cho DH, Lim JH. A study on the surface roughness and initial stability of various dental implants. J Korean Acad Stomatognathic Function and Occlusion 2000;16:197-210
  9. Kang BS, Cho IH. A histomorphometric and stability of two kinds of implants with different surface roughness. J Korean Acad Oral and Maxillofac Implants 2001;5:42-69
  10. Park KH, Chang IT. Osseointegration of anodized titanium implants. J Korean Acad Prosthodont 2004;42:267-277
  11. Son WW, Zhu X, Shin HI, Ong JL, Kim KH. In vivo histological response to anodized and anodized / hydrothermally treated titanium implants. J Biomed Mater Res Part B: Appl Biomater 66B: 2003;520-525 https://doi.org/10.1002/jbm.b.10042
  12. Kokubo T, Kushitani H, Sakka S. Solution able to reproduce in vivo surface-structure changes in bioactive glass-ceramic A-W. J Biomed Mater Res 1990;24:721-734 https://doi.org/10.1002/jbm.820240607
  13. Serro AP, Saramago B. Influence of sterilization on the mineralization of titanium implants induced by incubation in various biological model fluids. Biomaterials 2003;24:4749-4760 https://doi.org/10.1016/S0142-9612(03)00372-7
  14. Kim HM. Ceramic bioactivity and related biomimetic strategy. Current Opinion in Solid State and Materials Science 2003;7:289-299 https://doi.org/10.1016/j.cossms.2003.09.014
  15. Zhu X, Ong JL, Kim SK, Kim KH. Surface characteristics and structure of anodic oxide films containing Ca and P on a titanium implant material. J Biomed Mater Res 2002;60:333-338 https://doi.org/10.1002/jbm.10105
  16. Yang B, Uchida M, Kim HM, Zhang X, Kokubo T. Preparation of bioactive metal via anodic oxidation treatment. Biomaterials 2004;25:1003-1010 https://doi.org/10.1016/S0142-9612(03)00626-4
  17. Choi JW, Kim KN, Heo SJ, Chang IT, Han JH, Baik HK, et al. The effects of various surface treatment methods on the osseointegration. J Korean Acad Prosthodont 2001; 39:71-83
  18. Ishizawa H, Ogino M. Characterization of thin hydroxyapatite layers formed on anodic titanium oxide films containing Ca and P by hydrothermal treatment. J Biomed Mater Res 1995;29:1071-1079 https://doi.org/10.1002/jbm.820290907
  19. Wennerberg A. The importance of surface roughness for implant incorporation. Int J Mach Tool Manuf 1998;38:657-62 https://doi.org/10.1016/S0890-6955(97)00114-4
  20. Orton EC, Polher O, Shenk R, Hohn RB. Comparison of porous titanium-surfaced and standard smooth-surfaced bone plates and screws in an unstable fracture model in dogs. Am J Vet Res 1986;47:677-682
  21. Wennerberg A, Ektessabi A, Albrektsson T, Johansson C, Andersson B. A 1-year follow-up of implants of differing surface roughness placed in rabbit bone. Int J Maxillofac Implants 1997;12:486-494
  22. Kim HM, Miyaji F, Kokubo T, Nishiguchi S, Nakamura T. Graded surface of bioactive titanium prepared by chemical treatment. J Biomed Mater Res 1999;45:100- 107 https://doi.org/10.1002/(SICI)1097-4636(199905)45:2<100::AID-JBM4>3.0.CO;2-0
  23. Kim HM, Kokubo T, Fujibayashi S, Nishiguchi S, Nakamura T. Bioactive macroporous titanium surface layer on titanium substrate. J Biomed Mater Res 2000;52:553-557 https://doi.org/10.1002/1097-4636(20001205)52:3<553::AID-JBM14>3.0.CO;2-X
  24. Kim HM, Himeno T, Kawashita M, Lee JH, Kokubo T, Nakamura T. Surface potential changes in bioactive titanium metal during the process of apatite formation in simulated body fluid. J Biomed Mater Res 2003;67A:1305-1309 https://doi.org/10.1002/jbm.a.20039
  25. Kokubo T, Kim HM, Kawashita M. Novel bioactive materials with different mechanical properties. Biomaterials 2003; 24:2161-2175 https://doi.org/10.1016/S0142-9612(03)00044-9
  26. Kokubo T, Kim HM, Kawashita M, Nakamura T. Bioactive metals: preparation and properties. J Mater Sci Mater Med 2004;15:99-107 https://doi.org/10.1023/B:JMSM.0000011809.36275.0c
  27. Takadama H, Kim HM, Kokubo T, Nakamura T. TEM-EDX study of mechanism of bonelike apatite formation on bioactive titanium metal in simulated body fluid. J Biomed Mater Res 2001;57:441-448 https://doi.org/10.1002/1097-4636(20011205)57:3<441::AID-JBM1187>3.0.CO;2-B
  28. Han Y, Hong SH, Xu K. Structure and in vitro bioactivity of titania-based films by micro-arc oxidation. Surface and Coatings Technology 2003;168:249-258 https://doi.org/10.1016/S0257-8972(03)00016-1
  29. Song WH, Jun YK, Han Y, Hong SH. Biomimetic apatite coatings on micro-arc oxidized titania. Biomaterials 2004;25:3341-3349 https://doi.org/10.1016/j.biomaterials.2003.09.103
  30. Li LH, Kong YM, Kim HW, Kim YW, Kim HE, Heo SJ, et al. Improved biological performance of titanium implants due to surface modification by micro-arc oxidation. Biomaterials 2004;25:2867-2875 https://doi.org/10.1016/j.biomaterials.2003.09.048
  31. Leonor IB, Kim HM, Balas F, Kawashita M, Reis RL, Kokubo T, et al. Surface charge of bioactive polyethylene modified with -SO3H groups and its apatite inducing capability in simulated body fluid. Key Engineering Materials 2005;284-286:453-456
  32. Hench LL. Bioceramics. From concept to clinic. J Am Ceram Soc 1991;74:1487-1510 https://doi.org/10.1111/j.1151-2916.1991.tb07132.x
  33. Hench LL. Bioceramics. J Am Ceram Soc 1998;81:1705-1728 https://doi.org/10.1111/j.1151-2916.1998.tb02540.x
  34. Lausmaa J. Multi-technique surface characterization of oxide film of electropolished and anodically oxidized titanium. Appl Surface Sci 1990;45:189-200 https://doi.org/10.1016/0169-4332(90)90002-H
  35. Uchida M, Kim HM, Kokubo T, Fujibayashi S, Nakamura T. Structural dependence of apatite formation on titania gels in a simulated body fluid. J Biomed Mater Res 2003;64A:164-170 https://doi.org/10.1002/jbm.a.10414