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Title: | Magnetic Properties of FeNi/Cu-Based Lithographic Rectangular Multilayered Elements for Magnetoimpedance Applications |
Authors: | Melnikov, G. Y. Vazhenina, I. G. Iskhakov, R. S. Boev, N. M. Komogortsev, S. V. Svalov, A. V. Kurlyandskaya, G. V. |
Issue Date: | 2023 |
Publisher: | Multidisciplinary Digital Publishing Institute (MDPI) |
Citation: | Melnikov, GY, Vazhenina, IG, Iskhakov, RS, Boev, NM, Komogortsev, SV, Svalov, AV & Kurlyandskaya, GV 2023, 'Magnetic Properties of FeNi/Cu-Based Lithographic Rectangular Multilayered Elements for Magnetoimpedance Applications', Sensors, Том. 23, № 13, 6165. https://doi.org/10.3390/s23136165 Melnikov, G. Y., Vazhenina, I. G., Iskhakov, R. S., Boev, N. M., Komogortsev, S. V., Svalov, A. V., & Kurlyandskaya, G. V. (2023). Magnetic Properties of FeNi/Cu-Based Lithographic Rectangular Multilayered Elements for Magnetoimpedance Applications. Sensors, 23(13), [6165]. https://doi.org/10.3390/s23136165 |
Abstract: | The rectangular elements in magnetoimpedance (MI) configuration with a specific nanocomposite laminated structure based on FeNi and Cu layers were prepared by lift-off lithographic process. The properties of such elements are controlled by their shape, the anisotropy induced during the deposition, and by effects associated with the composite structure. The characterizations of static and dynamic properties, including MI measurements, show that these elements are promising for sensor applications. We have shown that competition between the shape anisotropy and the in-plane induced anisotropy of the element material is worth taking into account in order to understand the magnetic behavior of multilayered rectangular stripes. A possibility of the dynamic methods (ferromagnetic and spin-wave resonance) to describe laminated planar elements having a non-periodic modulation of both structure and magnetic parameters of a system is demonstrated. We show that the multilayered structure, which was originally designed to prevent the development of a “transcritical” state in magnetic layers and to reach the required thickness, also induces the effects that hinder the achievement of the goal, namely an increase in the perpendicular magnetic anisotropy energy. © 2023 by the authors. |
Keywords: | FERROMAGNETIC RESONANCE MAGNETIC FIELD SENSORS MAGNETIC MULTILAYERS MAGNETIC PROPERTIES MAGNETOIMPEDANCE PERMALLOY SPIN-WAVE RESONANCE BINARY ALLOYS FERROMAGNETIC MATERIALS FERROMAGNETISM IRON ALLOYS LAMINATING MAGNETIC ANISOTROPY MAGNETIC MULTILAYERS NICKEL ALLOYS SPIN WAVES CU LAYERS CU-BASED LAMINATED STRUCTURES MAGNETIC FIELDS SENSORS MAGNETO-IMPEDANCE MAGNETOIMPEDANCE MULTI-LAYERED PERMALLOYS SPIN-WAVE RESONANCE STRUCTURE-BASED FERROMAGNETIC RESONANCE COPPER ANISOTROPY CHEMISTRY MAGNETISM ANISOTROPY COPPER MAGNETIC PHENOMENA MAGNETICS MAGNETS |
URI: | http://elar.urfu.ru/handle/10995/130642 |
Access: | info:eu-repo/semantics/openAccess cc-by |
License text: | https://creativecommons.org/licenses/by/4.0/ |
SCOPUS ID: | 85164846552 |
WOS ID: | 001028404600001 |
PURE ID: | 41993233 |
ISSN: | 1424-8220 |
DOI: | 10.3390/s23136165 |
Sponsorship: | Russian Science Foundation, RSF: 22-29-00980 This research was funded by the Russian Science Foundation (RSF), project no. 22-29-00980, https://rscf.ru/project/22-29-00980/ (accessed on 1 July 2023). |
RSCF project card: | 22-29-00980 |
Appears in Collections: | Научные публикации ученых УрФУ, проиндексированные в SCOPUS и WoS CC |
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