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Название: Role of the interfaces in the crystallization and hysteresis mechanisms of amorphous Fe-B thin films
Авторы: Urdiroz, U.
Palomares, F. J.
Mayoral, A.
Soldatov, I. V.
Schäfer, R.
González, J. M.
Sanchez-Agudo, M.
Navarro, E.
Ruiz, A.
Alonso, M.
Vázquez, L.
Cebollada, F.
Дата публикации: 2021
Издатель: Elsevier Ltd
Библиографическое описание: Urdiroz, U, Palomares, FJ, Mayoral, A, Soldatov, IV, Schäfer, R, González, JM, Sanchez-Agudo, M, Navarro, E, Ruiz, A, Alonso, M, Vázquez, L & Cebollada, F 2021, 'Role of the interfaces in the crystallization and hysteresis mechanisms of amorphous Fe-B thin films', Journal of Alloys and Compounds, Том. 869, 159276. https://doi.org/10.1016/j.jallcom.2021.159276
Urdiroz, U., Palomares, F. J., Mayoral, A., Soldatov, I. V., Schäfer, R., González, J. M., Sanchez-Agudo, M., Navarro, E., Ruiz, A., Alonso, M., Vázquez, L., & Cebollada, F. (2021). Role of the interfaces in the crystallization and hysteresis mechanisms of amorphous Fe-B thin films. Journal of Alloys and Compounds, 869, [159276]. https://doi.org/10.1016/j.jallcom.2021.159276
Аннотация: In this work we study the crystallization processes of two sets of amorphous Fe80B20 films fabricated by Pulsed Laser Ablation Deposition on substrates with different nature, Corning glass® and MgO(001). We analyze their magnetic hysteresis mechanisms by means of magneto-optic techniques and Transmission Electron Microscopy. The as-deposited amorphous films present a highly homogeneous uniaxial magnetic anisotropy with the easy axis orientation dependent on the type of substrate and much weaker than that of bulk alloys with similar composition. The onset of crystallization for the films deposited on glass and MgO appears, respectively, at temperatures 150 °C and 250 °C below that of their bulk counterparts. We study the role of the substrate in the crystallization mechanism and the resulting nanostructure of the magnetic films. While the crystallization of the MgO-deposited films proceeds in a broad front growing from the substrate to the surface, that of the glass-deposited films takes place through the nucleation and growth of isolated crystallites. We analyze the evolution of the coercivity during the crystallization of the films. It follows a similar trend for both types, remaining in values close to those of the amorphous precursors until it rises steeply at a given annealing temperature. The threshold of the steep coercivity increase of the glass-deposited films is shifted to lower temperatures with respect to the MgO ones, in spite of the higher crystallization onset temperature of the former. The coercivity mechanisms have been analyzed, correlated to the films interfacial characteristics and compared to those of bulk alloys. © 2021 Elsevier B.V.
Ключевые слова: AMORPHOUS FERROMAGNETS
CRYSTALLIZATION
MAGNETIZATION PROCESS
MAGNETO-OPTICAL KERR MICROSCOPY
THIN FILM
TRANSMISSION ELECTRON MICROSCOPY
AMORPHOUS FILMS
COERCIVE FORCE
CRYSTALLITES
GLASS
HIGH RESOLUTION TRANSMISSION ELECTRON MICROSCOPY
HYSTERESIS
IRON COMPOUNDS
LASER ABLATION
MAGNESIA
MAGNETIC ANISOTROPY
MAGNETISM
OXIDE MINERALS
PULSED LASER DEPOSITION
SUBSTRATES
THIN FILMS
ANNEALING TEMPERATURES
CRYSTALLIZATION MECHANISMS
CRYSTALLIZATION ONSET TEMPERATURE
CRYSTALLIZATION PROCESS
INTERFACIAL CHARACTERISTICS
MAGNETO-OPTIC TECHNIQUES
PULSED LASER ABLATION DEPOSITIONS
UNIAXIAL MAGNETIC ANISOTROPY
BORON COMPOUNDS
URI: http://elar.urfu.ru/handle/10995/132428
Условия доступа: info:eu-repo/semantics/openAccess
cc-by
Идентификатор РИНЦ: 46759538
Идентификатор SCOPUS: 85101941626
Идентификатор WOS: 638274800037
Идентификатор PURE: 21022522
6c92426a-1f4e-41a6-afee-7f60346b5b54
ISSN: 0925-8388
DOI: 10.1016/j.jallcom.2021.159276
Сведения о поддержке: Instituto de Nanociencia de Aragon
Spanish Research Agency
Family Process Institute, FPI, (BES-2014-070387)
Deutsche Forschungsgemeinschaft, DFG, (SO 1623/2-1)
Consejo Superior de Investigaciones Científicas, CSIC, (2019AEP150)
Ministerio de Ciencia e Innovación, MICINN, (RYC2018-024561-I)
Universidad de Zaragoza, UZ
Agencia Estatal de Investigación, AEI, (MAT2016-80394-R)
Funding text 1: We thank the financial support by the Spanish Research Agency (AEI), project MAT2016-80394-R, and Consejo Superior de Investigaciones Científicas (CSIC), Ref. 2019AEP150. U.U. acknowledges FPI grant BES-2014-070387. The microscopy works have been conducted in the “Laboratorio de Microscopias Avanzadas (LMA)” at Instituto de Nanociencia de Aragon (INA) - Universidad de Zaragoza. Authors acknowledge the LMA-INA for offering access to their instruments and expertise. A.M. acknowledges the Spanish Ministry of Science through the Ramon y Cajal program (RYC2018-024561-I). I.S. is grateful to Deutsche Forschungsgemeinschaft for support through project SO 1623/2-1.
Funding text 2: We thank the financial support by the Spanish Research Agency ( AEI ), project MAT2016-80394-R , and Consejo Superior de Investigaciones Científicas ( CSIC ), Ref. 2019AEP150 . U.U. acknowledges FPI grant BES-2014-070387 . The microscopy works have been conducted in the “Laboratorio de Microscopias Avanzadas (LMA)” at Instituto de Nanociencia de Aragon (INA) - Universidad de Zaragoza. Authors acknowledge the LMA-INA for offering access to their instruments and expertise. A.M. acknowledges the Spanish Ministry of Science through the Ramon y Cajal program ( RYC2018-024561-I ). I.S. is grateful to Deutsche Forschungsgemeinschaft for support through project SO 1623/2-1 .
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