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Influence of Magnetic Field on Microwave Impedance of Composite Films (CoFeB+SiO2)

  • Leonid Kotov
  • , Michail Lasek
  • , Vladimir Vlasov
  • , Yuri Kalinin
  • , Alexander Sitnikov
  • , Vasily Temnov
  • Syktyvkar State University
  • Voronezh State Technical University

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

Radio Frequency (RF) impedance of metal- dielectric films [ (CoFeB)x+ (SiO2)(1-x)], x = 0.76, 0.88, 0.9 in the frequency range 0.1-3 GHz at room temperature were obtained in the work. Magnetic phase contrast (MPC) images of film surface fragments were obtained using an atomic force microscope. A stripe magnetic structure in the film at x = 0.76 before and after magnetization of the film in a magnetic field of 0.7 Tesla was discovered. The clarity of the magnetic domain structure image after magnetization of this film was observed to decrease. Deep minima of the magnetic impedance M (f) in the frequency range 1-2.5 GHz were observed in the studied composite films. The depth of the magnetic impedance minima for all films in the M (f) dependence decreases with increasing induction of the magnetic field in which the film is located, it was shown. The minima of M (f) for films at x=0.76 shift towards lower frequencies after magnetization of the films under the influence of a magnetic field Bo=0.7 T. The M (f) minima for films at x=0.88 do not shift under the influence of a magnetic field. This film at x=0.88 is characterized by the presence of extended inhomogeneous magnetic stripes, which significantly reduce the microwave mobility of the magnetic structure. The shift in the minimum of the microwave spectrum and the decrease in the amplitude of the minimums are associated with a change in the magnetic structure of the films when they are magnetized in a magnetic field of 0.7 Tesla.

Original languageEnglish
Title of host publication2023 International Conference on Next Generation Electronics, NEleX 2023
PublisherInstitute of Electrical and Electronics Engineers Inc.
ISBN (Electronic)9798350319088
DOIs
Publication statusPublished - 1 Jan 2023
Event2023 IEEE International Conference on Next Generation Electronics, NEleX 2023 - Vellore, India
Duration: 14 Dec 202316 Dec 2023

Publication series

Name2023 International Conference on Next Generation Electronics, NEleX 2023

Conference

Conference2023 IEEE International Conference on Next Generation Electronics, NEleX 2023
Country/TerritoryIndia
CityVellore
Period14/12/2316/12/23

Keywords

  • Radio frequency impedance
  • composite
  • constant magnetic field
  • magnetic phase contrast
  • magnetic structure
  • metal alloy
  • metal-dielectric films

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