aInstitute of Chemistry, Vilnius University, Vilnius, Lithuania bCenter for Physical Sciences and Technology, Vilnius, Lithuania cInstitute of Chemical Physics, Vilnius University, Vilnius, Lithuania dDepartment of Biomaterials, Faculty of Dental Science, Kyushu University, Maidashi, Higashi-Ku, Fukuoka, Japan
Аннотация:
The thin films of calcium hydroxyapatite were deposited on a stainless steel substrate modified with titanium nitride (TiN) using an aqueous sol–gel method and characterized by X-ray diffraction analysis. It was demonstrated for the first time that the formation of calcium hydroxyapatite during heat treatment inhibited the formation of Fe2O3 and promoted the formation of TiO2 on the surface.
Образец цитирования:
V. Jonauske, R. Ramanauskas, R. Platakyte, G. Niaura, L. Mikoliunaite, K. Ishikawa, A. Kareiva, “Formation of 2D calcium hydroxyapatite on stainless steel modified with a TiN sublayer”, Mendeleev Commun., 30:4 (2020), 512–515
Образцы ссылок на эту страницу:
https://www.mathnet.ru/rus/mendc1242
https://www.mathnet.ru/rus/mendc/v30/i4/p512
Эта публикация цитируется в следующих 3 статьяx:
Anastasiya A. Gutsalova, Dmitriy A. Fedorishin, Daria N. Lytkina, Irina A. Kurzina, “Bioactive materials for bone regeneration based on zinc-modified hydroxyapatite”, Mendeleev Communications, 31:3 (2021), 382
Chokri Ben Aissa, Kaouther Khlifi, “Caractérisation nano-mécanique et tribologique des revêtements TiO2 et TiN déposés sur acier inoxydable 316L pour applications biomédicales”, Matériaux & Techniques, 109:1 (2021), 104
V. K. Besprozvannykh, I. E. Nifant'ev, A. N. Tavtorkin, I. S. Levin, A. V. Shlyakhtin, P. V. Ivchenko, “Hydroxyapatite of plate-like morphology obtained by low temperature hydrothermal synthesis”, Mendeleev Commun., 31:1 (2021), 97–99