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| Czasopismo |
Obróbka Plastyczna Metali |
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| Tytuł artykułu |
Bioaktywne powłoki przeciwdrobnoustrojowe na wyrobach medycznych do implantacji nałożone przez plazmowe utlenianie elektrolityczne |
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| Autorzy | Dzhurinskiy, D. | |||||
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| Warianty tytułu |
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| Języki publikacji | PL, EN | |||||
| Abstrakty |
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| Słowa kluczowe | ||||||
| Wydawca |
Sieć Badawcza Łukasiewicz – Instytut Obróbki Plastycznej |
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| Czasopismo | Obróbka Plastyczna Metali | |||||
| Rocznik | 2018 | |||||
| Tom | T. 29, nr 1 | |||||
| Strony | 65--76 | |||||
| Opis fizyczny | Bibliogr. 25 poz., rys., tab. | |||||
| Twórcy |
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| Bibliografia |
[1] Niinomi M., M. Nakai, J. Hieda. 2012. „Development of new metallic alloys for biomedical applications”. Acta. Biomater. 8: 3888–3903.
[2] Niinomi M. 2008. „Biologically and Mechanically Biocompatible Titanium Alloys”. Mater. Trans. 10: 2170–2178. [3] Fadl-allah S., M. Quahtany, N. El-Shenaw. 2013. „Surface Modification of Titanium Plate with Anodic Oxidation and Its Application in Bone Growth”. J. Biomater. Nanobiotech. 4: 74–83. [4] Song W.H., H.S. Ryu, S.H. Hong,. 2005. „Apatite induction on Ca-containing titania formed by micro-arc oxidation”. J. Am. Ceram. Soc. 88: 2642–2644. [5] Li L.H., Y.M. Kong, H.W. Kim. 2004. „Improved biological performance of Ti implants due to surface modification by micro-arc oxidation”. Biomaterials 25: 2867–2875. [6] Dearnley P.A., K.L. Dahm, H. Çimenoglu. 2004. „The corrosion–wear behaviour of thermally oxidised CP-Ti and Ti–6Al–4V. Wear 256: 469–479. [7] Kuroda K., M. Okido. 2012. „Hydroxyapatite coating of titanium implants using hydroprocessing and evaluation of their osteoconductivity. Bionorg. Chem. Appl. 2012: 1–7. [8] . Lee S.H, H.W. Kim, E.J. Lee, H.E. Kim. 2006. „Hydroxyapatite-TiO2 hybrid coating on Ti implants”. J. Biomater. Appl. 20 (3): 195–208. [9] Mavis B., A. Cuneyt Tas. 2000. „Dip Coating of calcium hydroxyapatite on Ti-6Al-4V substrates”. J. Am. Ceram. Soc. 83: 989–991. [10] Wei D., Y, Zhou, D, Jia, Y, Wang. 2008. „Chemical treatment of TiO2-based coatings formed by plasma electrolytic oxidation in electrolyte containing nano-HA, calcium salts and phosphates for biomedical applications”. Appl. Surf. Sci. 254: 1775–1782. [11] Kim D.-Y., M. Kim, H.-Ee. Kim, Y.-H. Koh, H.-W. Kim. 2009. „Formation of hydroxyapatite within porous TiO2 layer by microarc oxidation coupled with electrophoretic deposition.” Acta. Biomater. 5: 2196–2205. [12] Wook Y., S. Yong Kwoon, D. Hoon Sun, H. Ee Kim. 2009. „Enhanced Cell Integration to Titanium Alloy by Surface Treatment with Microarc Oxidation: A Pilot Study”. Clin. Orthop. Relat. Res. 467 (9): 2251–2258. [13] Ms K., R. Jm, S. Ym. 2007. „One-step approach for nano-crystalline hydroxyapatite coating on titanium via micro-arc oxidation”. Electrochem. Commun. 9: 1886–1891. [14] Jh N., S. Yl, Y. Fy, C. Jz. 2008. „Preparation of hydroxyapatite-containing titania coating on titanium substrate by microarc oxidation”. Mater. Res. Bull. 43: 45–53. [15] Dzhurinskiy D., Y. Gao, E. Strumban, V. Leshchinsky, A. Yerokhin, R. Maev. 2015. „Characterization and corrosion evaluation of TiO2:n-HA coatings on titanium alloy formed by plasma electrolytic oxidation”. Surf. Coat. Technol. 269: 258–265. [16] Chiesa R., E. Sandrini, M. Santin, G. Rondelli, A. Cigada. 2003. „Osteointegration of Titanium and Its Alloys by Anodic Spark Deposition and other Electrochemical Techniques: A Review”. J. Appl. Biomater. Biom. 1 (2): 91–107. [17] Song W.H., Y.K. Jun, Y. Han. 2004. „Biomimetc apatite coatings on micro-ark oxidized titania”. Biomaterials 25: 3341–3349. [18] Dicu M.M., M. Abrudeanu, J. Millet, S. Moga, V. Rizea. 2012. „Physico-chemical properties of microarc Oxidation of biocompatible coatings on Titanium: influence of electrochemistry Parameters.” Sci. Bull. 74: 193–202. [19] Sah S., Y. Aoki, .H. Habazaki. 2010. „Influence of phosphate concentration on plasma electrolytic oxidation of AZ80 magnesium alloy in alkaline aluminate solution.” Mater. Trans. 51 (1): 94–102. [20] Ohk S., H. Hwang. 2012. Other Applications of Photo Catalyst in Dental Treatments in Diverse Fields. In Orthodontics – Basic Aspects and Clinical Considerations. InTech Europe. [21] Zhao Y., Y. Huang, J. Zhu, S. Zhu. 2011. „Characteristics of functionalized nanohydroxyapatite and internalization by human epithelial cell.” Nano. Res. Lett. 6: 600. [22] Mangaly R., A. Bandyopadhyay, S. Bose. 2011. „Induction Plasma Sprayed Nano Hydroxyapatite Coatings on Titanium for Orthopaedic and Dental Implants”. Surf. Coat. Technol. 25: 2785–2792. [23] Sallam S.M., K.M. Tohami, A.M. Sallam, L.I. Abo Salem, F.A. Mohamed. 2012. „Synthesis and cha-racterization of hydroxyapatite contain chromium”. J. Biophys. Chem. 3 (4): 278–282. [24] Mitsionis A., T. Vaimakis, C. Trapalis, N. Todorova, D. Bahnemann, R. Dillert. 2011. „Hydroxyapatite /titanium dioxide nanocomposites for controlled photocatalytic no oxidation”. Applied Catalysis B: Environmental 106: 398–404. [25] Panda R.N., M.F. Hsieh, R.J. Chung, T.S. Chin. 2003. „FTIR, XRD, SEM and solid state NMR investigations of carbonate-containing hydroxyapatite nano-particles synthesized by hydroxide-gel technique”. J. Phys. Chem. Solids. 64: 193–199. |
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| Kolekcja | BazTech | |||||
| Identyfikator YADDA | bwmeta1.element.baztech-d53b7515-99c9-4590-940b-866f4afc0f04 | |||||
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