[1] Lavenus S, Trichet V, Le Chevalier S, et al. Cell differentiation and osseointegration influenced by nanoscale anodized titanium surfaces[J]. Nanomedicine (Lond), 2012, 7(7):967-980.
[2] Diamanti MV, Curto BD, Pedeferri MP. Anodic oxidation of titanium: from technical aspects to biomedical applications[J]. Appl Biomater Biomech, 2011, 9(1):55-69.
[3] Kim MH, Park K, Choi KH, et al. Cell adhesion and in vivo osseointegration of sandblasted/acid etched/anodized dental implants[J]. Int J Mol Sci, 2015, 16(5):10324-10336.
[4] Sul YT, Johansson CB, Jeong Y, et al. The electrochemical oxide growth behaviour on titanium in acid and alkaline electrolytes[J]. Med Eng Phys, 2001, 23(5):329-346.
[5] Van Gils S, Mast P, Stijns E,et al. Colour properties of barrier anodic oxide films on aluminium and titanium studied with total reflectance and spectroscopic ellipsometry[J].Surface Coatings Technology, 2004, 185(2-3):303-310.
[6] Holmberg RJ, Beauchemin D, Jerkiewicz G. Characteristics of colored passive layers on titanium: morphology, optical properties, and corrosion resistance[J]. ACS Appl MaterInterfaces, 2014, 6(23):21576-21584.
[7] Moon J, Kemell M, Park B, et al. The correlation between the interference colour and growth procedure of anodic titanium dioxide nanotube arrays[J]. Coloration Technology, 2013, 130(1):1-7.
[8] Diamanti MV, Rel Curto B, Pedefeni MP. Interference colors of thin oxide layers on titanium[J]. Color Research Application, 2008, 33(3):221-228.
[9] Felgueiras HP, Castanheira L, Changotade S, et al. Biotribocorrosion (tribo-electrochemical) characterization of anodized titanium biomaterial containing calcium and phosphorus before and after osteoblastic cell culture[J]. J Biomed Mater Res B Appl Biomater, 2015, 103(3):661-669.
[10] Benea L, Mardare-Danaila E, Mardare M, et al. Preparation of titanium oxide and hydroxyapatite on Ti-6Al-4V alloy surface and electrochemical behaviour in bio-simulated fluid solution[J]. Corrosion Science, 2014, 80(3):331-338.
[11] Selimin MA, Mohd Idru NH, Abdullah HZ. Anodic Oxidation of Titanium for Biomedical Application[J]. Advanced Materials Research, 2015, 1087:122-126.
[12] Cui X, Kim HM, Kawashita M, et al. Preparation of bioactive titania films on titanium metal via anodic oxidation[J]. Dent Mater, 2009, 25(1):80-86.
[13] Minagar S, Berndt CC, Wang J, et al. A review of the application of anodization for the fabrication of nanotubes on metal implant surfaces[J]. Acta Biomater, 2012, 8(8):2875-2888.
[14] Li B, Li Y, Li J, et al. Influence of nanostructures on the biological properties of Ti implants after anodic oxidation[J]. J Mater Sci Mater Med, 2014, 25(1):199-205.
[15] Walter MS , Frank MJ, Sunding MF. et al. Increased reactivity and in vitro cell response of titanium based implant surfaces after anodic oxidation[J]. J Mater Sci Mater Med,2013, 24(12):2761-2773.
[16] Kaluderovic MR, Schreckenbach JP, Graf HL.First titanium dental implants with white surfaces:preparation and in vitrotests [J]. Dent Mater, 2014, 30(7):759-768.
[17] Zhu X, Kim KH, Jeong Y, et al. Anodic oxide films containing Ca and P of titanium biomaterial[J]. Biomaterials,2001, 22(16):2199-2206.
[18] Cai K, Frant M, Bossert J, et al. Surface functionalized titanium thin films: zeta-potential, protein adsorption and cell prolifertion[J]. Colloids Surf B Biointerfaces, 2006, 50(1):1-8.
[19] Jin GC, Park RS, Park HH, et al. Evaluation of characteristics on titanium surface treatment for absorption of functional groups[J]. Chin Med J (Engl), 2010, 123(21):3132-3136.
[20] Chen CC, Chen JH, Chao CG, et al. Electrochemical characteristics of surface of titanium formed by electrolytic polishing and anodizing[J]. J Materials Science, 2005, 40(15):4053-4059.
[21] Liu Z, Liu X, Donatus U, et al. Corrosion behaviour of the anodic oxide film on commercially pure titanium in NaCl environment[J]. Int J Electrochem Sc,2014, 9(7):3558-3573.
[22] Karambakhsh A, Afshar A, Ghahramani S, et al. Pure commercial titanium color anodizing and corrosion resistance[J]. J Mater Eng Perform, 2011, 20(9):1690-1696.
[23] Caliskan N, Bayram C, ErdalE, et al. Titania nanotubes with adjustable dimensions for drug resevoir sites and enhanced cell adhesion[J]. MaterSciEngC Mater Biol Appl,2014, 35(1):100-105.
[24] Kim K, Lee BA, Piao XH, et al. Surface characteristics and bioactivity of an anodized titanium surface[J]. J Periodental Implant Sci, 2013, 43(4):198-205.
[25] Schreckenbach JP, Marx G, Schlotting F, et al. Charaterization of anodic spark-converted titanium surfaces for biomedical applications[J]. J Mater SciMater Med, 1999, 10(8):453-457.
[27] El-wassefy NA, Hammouda IM, Habib AN, et al. Assessment of anodized titanium implants bioactivity[J]. Clin Oral Implants Res, 2014, 25(2):e1-9.
[28] Cui X, Kim HM, Kawashita M, et al. Preparation of bioactive Ti and its alloys via electrochemical treatment in sulfuric acid solution[J]. J Ceram Soc Jpn, 2008, 116(2):329-333.
[29] Rieger E, Dupret-Bories A, Salou L, et al. Controlled implant/soft tissue interaction by nanoscale surface modifications of 3D porous titanium implants[J]. Nanoscale, 2015, 7(21):9908-9918
[30] 李振春, 胡小霞. 表面氧化处理钛合金种植体骨界面血小板源性生长因子的表达变化[J]. 口腔材料器械杂志, 2011, 20(1):19-21,26.
[31] 李志安. 钛种植体表面改性的现状、问题与发展趋势[J].口腔材料器械杂志, 2013, 22(2):57-60.
[32] Larsson C, Thomsen P, Aronsson BO, et al. Bone response to surface-modified titanium implants: studies on the early tissue response to machined and electropolished implants with different oxide thicknesses[J]. Biomaterials, 1996, 17(6):605-616.
[33] Castro AG, Bastos AC, Galstyan V, et al. Synthesis and electrochemical study of a hybrid structure based on PDMS-TEOS and titania nanotubes for biomedical applications[J]. Nanotechnology, 2014, 25(36):365701.
[34] Kang MK, Moon SK, Kwon JS, et al. Characterization of hydroxyapatite containing a titania layer formed by anodization coupled with blasting[J]. Acta Odontol Scand,2014, 72(8):989-998.
[35] Salou L, Hoornaert A, Louarn G, et al. Enhanced osseointegration of titanium implants with nanostructured surfaces: an experimental study in rabbits[J]. Acta Biomater,2015, 11:494-502
[36] Ding X, Zhou L, Wang J, et al. The effects of hierarchical micro/nanosurfaces decorated with TiO2 nanotubes on the bioactivity of titanium implants in vitro and in vivo[J]. Int J Nanomedicine 2015,10:6955-6973.
[37] Ou KL, Hsu HJ, Yang TS, et al. Osseointegration of titanium implants with SLAffinity treatment: a histological and biomechanical study in miniature pigs[J]. Clin Oral Investig, 2015:1-10.
[38] Liu Q, Liu Y, Lei T, et al. Preparation and characterization ofnanostructured titanate bioceramic coating by anodization-hydrothermal method[J]. Appl Surf Sci, 2015, 328:279-286.
[39] Grotberg J, Hamlekhan A, Butt A, et al. Thermally oxidized titania nanotubes enhance the corrosion resistance of Ti6Al4V[J]. Mater Sci Eng C Mater Biol Appl, 2016, 59:677-689.
[40] Vera ML, Rosenberger MR, Schvezov CE, et al. Fabrication of TiO2 crystalline coatings by combining Ti-6Al-4V anodic oxidation and heat treatments[J]. Int J Biomater,2015, 2015:395657. |