Cite

1. Tobin E.J.: Recent coating developments for combination devices in orthopedic and dental applications. A literature review. Advanced Drug Delivery Reviews 112 (2017) 88-100.Search in Google Scholar

2. Goodman S.B., Yao Z., Keeney M., Yang F.: The future of biologic coatings for orthopaedic implants. Biomaterials 34 (2013) 3174-3183.Search in Google Scholar

3. Heimann Robert B.: Materials Science of Bioceramic Coatings. The Open Biomedical Engineering Journal 9 (2015) 25–28.10.2174/1874120701509010025439121425893013Search in Google Scholar

4. Sakka S., Bouaziz J., Ayed F.B.: [In] Advances in Biomaterials Science and Biomedical Applications, R. Pignatello [ed.], InTech, London, UK, 2013, pp. 23-50.Search in Google Scholar

5. Rahbek O., Overgaard S., Lind M., Bendix K., Bunger C., Soballe K.: Sealing effect of hydroxyapatite coating on peri-implant migration of particles. An experimental study in dogs. J Bone Joint Surg Br. [ed.], 2001, 83, 441–7.10.1302/0301-620X.83B3.0830441Search in Google Scholar

6. Geesink RG.: Osteoconductive coatings for total joint arthroplasty. Clin Orthop Relat Res. [ed.], 2002, 395, 53–65.10.1097/00003086-200202000-0000711937866Search in Google Scholar

7. Waheed S., Sultan M., Jamil T., Hussain T.: Comparative analysis of hydroxyapatite synthesized by sol-gel, ultrasonication and microwave assisted technique. Journal home page for Materials Today: Proceedings 2 (2015) 5477-5484.Search in Google Scholar

8. Szcześ A., Hołysz L., Chibowski E.: Synthesis of hydroxyapatite for biomedical applications. Advances in Colloid and Interface Science 249 (2017) 321-330.10.1016/j.cis.2017.04.00728457501Search in Google Scholar

9. Fihri A., Len C., Varmac R.S., Solhy A.: Hydroxyapatite: A review of syntheses, structure and applications in heterogeneous catalysis. Coordination Chemistry Reviews 347 (2017) 48-76.Search in Google Scholar

10. Geesink R. G. T.: Hydroxylapatite coatings in orthopedic surgery, R. G. T. Geesink, M. T. Manicy [ed.], Raven Press, Ltd. New York, 1993, pp. 1-319.Search in Google Scholar

11. Betke A., Kickelbick G.: Bottom-Up, wet chemical technique for the continuous synthesis of inorganic nanoparticles. Inorganics 2 (2014) 1-15.Search in Google Scholar

12. Vilardell A.M., Cinca N., Garcia-Giralt N., Dosta S., Cano I.G., Nogués X., Guilemany J.M.: Functionalized coatings by cold spray: An in vitro study of micro- and nanocrystalline hydroxyapatite compared to porous titanium. Materials Science and Engineering 87 (2018) 41-49.Search in Google Scholar

13. Farrokhi-Rad M.: Electrophoretic deposition of hydroxyapatite fiber reinforced hydroxyapatite matrix nanocomposite coatings. Surface and Coatings Technology 329 (2017) 155-162.Search in Google Scholar

14. Adeleke S.A., Ramesh S., Bushroa A.R., Ching Y.C., Sopyan I., Maleque M.A., Krishnasamy S., Chandran H., Misran H., Sutharsini U.: The properties of hydroxyapatite ceramic coatings produced by plasma electrolytic oxidation. Ceramics International 44 (2018) 1802-1811.Search in Google Scholar

15. Ivanova A.A., Surmeneva M.A., Tyurin A.I., Surmenev R.A.: Correlation between structural and mechanical properties of RF magnetron sputter deposited hydroxyapatite coating. Materials Characterization 142 (2018) 261-269.Search in Google Scholar

16. Trommer R.M., Santos L.A., Bergmann C.P.: Alternative technique for hydroxyapatite coatings. Surface and Coatings Technology 201 (2007) 9587-9593.10.1016/j.surfcoat.2007.04.028Search in Google Scholar

17. Liu Y.-C., Lin G.S., Wang J.-Y., Cheng C.-S., Yang Y.-C., Lee B.-S., Tung K.-L.: Synthesis and characterization of porous hydroxyapatite coatings deposited on titanium by flame spraying. Surface and Coatings Technology 349 (2018) 357-363.Search in Google Scholar

18. Hidalgo-Robatto B.M., López-Álvarez M., Azevedo A.S., Dorado J., Serra J., Azevedo N.F., González P.: Pulsed laser deposition of copper and zinc doped hydroxyapatite coatings for biomedical applications. Surface and Coatings Technology 333 (2018) 168-177.Search in Google Scholar

19. Domínguez-Trujillo C., Peón E., Chicardi E., Pérez H., Rodríguez-Ortiz J.A., Pavón J.J., García-Couce J., Galván J.C., García-Moreno F., Torres Y.: Sol-gel deposition of hydroxyapatite coatings on porous titanium for biomedical applications. Surface and Coatings Technology 333 (2018) 158-162.Search in Google Scholar

20. Xu H., Geng X., Liu G., Xiao J., Li D., Zhang Y., Zhu P., Zhang C.: Deposition, nanostructure and phase composition of suspension plasma-sprayed hydroxyapatite coatings. Ceramics International 42 (2016) 8684-8690.Search in Google Scholar

21. Matassi F., Botti A., Sirleo L., Carulli C., Innocenti M.: Porous metal for orthopedics implants Clin. Cases Miner. Bone Metab. 10(2) (2013) 111-115 PMID: 24133527.Search in Google Scholar

22. Yang C.Y., Wang B.C., Chang E., Wu B.C.: The influences of plasma spraying parameters on the characteristics of hydroxyapatite coatings: a quantitative study. J. of Materials Sci.: Materials in Medicine 6 (1995) 249-257.Search in Google Scholar

23. Heimann R.B.: Thermal spraying of biomaterials, Surface and Coatings Technology. 201 (2006) 2012-2019.10.1016/j.surfcoat.2006.04.052Search in Google Scholar

24. Sridhar T.M., Kamachi U. and Subbaiyan M.: Sintering atmosphere and temperature effects on hydroxyapatite coated type 316L stainless steel. Corros. Sci. 45 (2008) 2337-2359.Search in Google Scholar

25. Yang Y., Kim K., Agrawal C. M. and Ong J. L.: Interaction of hydroxyapatite-titanium at elevated temperature in vacuum environment. Biomaterials. 25 (2004) 2927-2932.Search in Google Scholar

26. Implants for Surgery- Hydroxyapatite. Part 2: Coatings of Hydroxyapatite. International Organisation for Standards. BS ISO 13779-2:2000, 2000.Search in Google Scholar

27. Vahabzadeh S., Roy M., Bandyopadhyay A., Bose S.: Phase stability and biological property evaluation of plasma sprayed hydroxyapatite coatings for orthopedic and dental applications. Acta Biomaterialia 17 (2015) 47-55.Search in Google Scholar

28. Overgaard S, Bromose U, Lind M, Bunger C, Soballe K.: The influence of crystallinity of the hydroxyapatite coating on the fixation of implants. Mechanical and histomorphometric results, J Bone Joint Surg Br. 1999, 81, 725–31.Search in Google Scholar

29. Sun L, Berndt CC, Khor KA, Cheang HN, Gross KA.: Surface characteristics and dissolution behavior of plasma-sprayed hydroxyapatite coating. J Biomed Mater Res. 62(2) (2002) 228–36.Search in Google Scholar

30. Rouholamin D., Smith P. J., Ghassemieh E.: Control of morphological properties of porous biodegradable scaffolds processed by supercritical CO2 foaming. J Mater Sci 48 (2015) 3254–3263.Search in Google Scholar

31. Wiria F.E., Tay B.Y., Ghassemieh E.: Morphological and cell growth assessment in near dense hydroxyapatite scaffold. Journal of Materials ID 287853 (2013).10.1155/2013/287853Search in Google Scholar

32. Łatka L., Pawlowski L., Chicot D., Pierlot C., Petit F.: Mechanical properties of suspension plasma sprayed hydroxyapatite coatings submitted to simulated body fluid. Surface and Coatings Technology 205 (2010) 954-960.Search in Google Scholar

33. Yushenko K., Borisov Yu., Voynarovych S., Fomakin О.: Plasmatron for spraying of coatings/Pub. No.: WO/2004/010747 International Application. No.: PCT/UA2003/000014 Publication Date: 29.01.2004; International Filing Date: 25.04.2003, IPC: H05H 1/32. – 2006.Search in Google Scholar

34. Borisov Yu.S., Voinarovych S.G., Kyslytsia A.N., Borisova A.L., Tunik A. Yu.: Effect of coatings. Proc. of the Int. Thermal Spray Conference and Exposition ITSC 2006, Building on 100 Years of Success, Seattle, Washington, USA (2006) 29-34.Search in Google Scholar

35. Yuschenko K.A., Borisov Yu.S., Borisova A.L., Voinarovych S.G., Kyslytsia A.N., Tunik A. Yu., Adeeva L.I., Kuzmich- Yanchuk E.K.: Mikroplazmennoye provolochnoye napyleniye biomeditsinskikh titanovykh pokrytiy. Poroshkovaya metallurgiya. Sbornik nauchnykh trudov. Minsk: izdatelstvo «Belaruskaya navuka» Is.36 (2013) 261–268.Search in Google Scholar

36. Yushchenko K.A., Borisov Yu.S., Voinarovych S.G, Kyslytsia O. N., Kuzmich-Yanchuk Ye.K., Gaiko G.V., Pidgaetsky V. M.: Dvukhsloynoye biokermetnoye pokrytiye titan-gidroksiapatit. Problemi resursu bezpekiyekspluatatsії konstruktsіy, sporudta mashin. Sbornik trudov posvyashchennyy vypolneniyu kompleksnoy programmy. Kiev (2009) 542–547.Search in Google Scholar

37. Voinarovych S.G.: Vliyaniye parametrov mikroplazmennogo napyleniya na koeffitsiyent ispolzovaniya materiala pri napylenii biokeramicheskogo pokrytiya. Obrobka Materіalіv u Mashinobuduvanni (2010) 58-61.Search in Google Scholar

38. Thirumalaikumarasamya D., Shanmugama K., Balasubramanian V.: Influences of atmospheric plasma spraying parameters on the porosity level of alumina coating on AZ31B magnesium alloy using response surface methodology. Progress in Natural Science: Materials International 22(5) (2012) 468–479.Search in Google Scholar

39. Mohseni E., Zalnezhad E., Bushroa A.R.: Comparative investigation on the adhesion of hydroxyapatite coating on Ti-6Al-4V implant: A review paper. International Journal of Adhesion and Adhesives 48 (2014) 238-257.Search in Google Scholar

40. Alontseva D.L., Borisov Yu. S., Voinarovych S.G., Kyslytsia O. N., Kolesnikova T.A., Prokhorenkova N.V., Kadyroldina A.T.: Development of technology of microplasma spraying for the application of biocompatible coatings in the manufacture of medical implants. Przegląd Elektrotechniczny 94 (7) (2018) 94-97.Search in Google Scholar

41. Alontseva D.L., Voinarovych S.G., Kyslytsia O. N., Dzhes A.V., Russakova A.V., Prokhorenkova N.V., Krasavin A.L., Leonova M.O.: Structural-phase transformations in coatings from biocompatible materials applied by microplasma spraying onto titanium implants. Basic Problems of Material Science 15 (1) (2018) 126-132.Search in Google Scholar

42. Sobczak A., Kowalski Z., Wzorek Z.: Preparation of hydroxyapatite from animal bones. Acta of Bioengineering and Biomechanics 11(4) (2009) 23-28.Search in Google Scholar

43. ASTM E2109-01(2014) Standard test methods for determining area percentage porosity in thermal sprayed coatings, ASTM International, West Conshohocken, PA, 2014Search in Google Scholar

44. Abilev M.B, Troyeglazova A.V., Akatan K., Alontseva D.L.: Mathematical modeling of the process of hydroxyapatite synthesis. Proc. 8-th Int. Conf. on Chemistry and Chemical Education Research Institute for Physical Chemical Problems of the Belarusian State University, Minsk, Belarus, 2018, p. 25.Search in Google Scholar

45. Gagg G., Ghassemieh E., Wiria F.E.: Effects of sintering temperature on morphology and mechanical characteristics of 3D printed porous titanium used as dental implant Materials. Science & Engineering C. Materials for Biological Applications 33(7) (2013) 3858-3864.Search in Google Scholar

46. Gagg G., Ghassemieh E., Wiria F.E.: Analysis of the compressive behavior of the threedimensional printed porous titanium for dental implants using a modified cellular solid model. Proc IMechE Part H: J Engineering in Medicine 0(0) (2013) 1–7.Search in Google Scholar

eISSN:
2083-4799
Language:
English
Publication timeframe:
4 times per year
Journal Subjects:
Materials Sciences, Functional and Smart Materials