In Situ Electron Diffraction Investigation of Solid State Synthesis of Co-In2O3 Ferromagnetic Nanocomposite Thin Films
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URI (for links/citations):
https://link.springer.com/article/10.1007/s11837-019-03919-5https://elib.sfu-kras.ru/handle/2311/142693
Author:
Bykova, L. E.
Zharkov, S. M.
Myagkov, V. G.
Zhigalov, V. S.
Patrin, G. S.
Corporate Contributor:
Институт инженерной физики и радиоэлектроники
Кафедра общей физики
Date:
2020-06Journal Name:
JOMJournal Quartile in Scopus:
Q1Journal Quartile in Web of Science:
Q2Bibliographic Citation:
Bykova, L. E. In Situ Electron Diffraction Investigation of Solid State Synthesis of Co-In2O3 Ferromagnetic Nanocomposite Thin Films [Текст] / L. E. Bykova, S. M. Zharkov, V. G. Myagkov, V. S. Zhigalov, G. S. Patrin // JOM. — 2020. — Т. 72 (№ 6). — С. 2139-2145Abstract:
In situ electron diffraction was used to study structural transformations during the formation of Co-In2O3 ferromagnetic anocomposite thin films in a thermite reaction of In/Co3O4 bilayer thin films. Heating was performed from room temperature to 600 C at a rate of 4 C/min, while simultaneously electron diffraction patterns were recorded at a speed of 4 frames/min. This made it
possible to determine the initiation, 185 C, and finishing, 550 C, temperatures of the solid-state synthesis, as well as the change in he phase composition during the thermite reaction. The synthesized Co-In2O3 film nanocomposite contained ferromagnetic cobalt anoclusters surrounded by an In2O3 layer, with an average size of 20 nm, and had a magnetization of 400 emu/cm3 and coercivity
of 50 Oe at room temperature. The estimate of the effective interdiffusion coefficient of the reaction suggests that the main
mechanism for the formation of the Co-In2O3 nanocomposite is diffusion along the grain boundaries and dislocations.
formation of the Co-In2O3 nanocomposite is diffusion along the grain boundaries and dislocations.