DocumentCode
1320459
Title
Measurements of Complex Magnetic Permeability of Nano-Size
-Al
Fe
Author
Afsar, Mohammed N. ; Korolev, Konstantin A. ; Namai, Asuka ; Ohkoshi, Shin-ichi
Author_Institution
Dept. of Electr. & Comput. Eng., Tufts Univ., Medford, MA, USA
Volume
48
Issue
11
fYear
2012
Firstpage
2769
Lastpage
2772
Abstract
The imaginary part of complex magnetic permeability spectrum confirms the strong ferromagnetic resonance absorptions to appear at 89 GHz for the ε-AlxFe2-xO3 nanomagnets prepared by sol-gel techniques for the x value to be 0.66. A strong anomalous dispersion corresponding to 89 GHz resonance is also observed in the real part of magnetic permeability spectrum. The free space quasi-optical spectrometer equipped with a set of tunable backward-wave oscillators as power sources is used in this work to study the transmittance, real and imaginary parts of complex dielectric permittivity and real and imaginary parts of complex magnetic permeability properties of this nano magnet materials. Complex dielectric permittivity and Complex magnetic permeability spectra over six waveguide bands are almost flat in the 8-40 GHz range The vector network analyzer and in-waveguide measurements were employed for the measurements over 8-40 GHz range. The absorption property is suggested to be caused by the natural resonance achieved by the large magnetic anisotropies in this series of aluminum substituted ferrite nanomagnets. The absorption peak shifts to the lower frequencies with increasing value of x -parameter. The average particle size of ε-AlxFe2-xO3 nanomagnets lies between 25 to 50 nm. The absorption and dispersion characteristics are repeatable for the same density of the powder material.
Keywords
aluminium compounds; ferrites; ferromagnetic resonance; magnetic anisotropy; magnetic particles; magnetic permeability; nanofabrication; nanomagnetics; nanoparticles; particle size; permittivity; powders; sol-gel processing; AlxFe2-xO3; absorption characteristics; absorption peak; absorption property; aluminum substituted ferrite nanomagnets; anomalous dispersion; average particle size; complex dielectric permittivity spectra; complex magnetic permeability measurements; complex magnetic permeability properties; complex magnetic permeability spectrum; dispersion characteristics; ferromagnetic resonance absorptions; free space quasioptical spectrometer; frequency 8 GHz to 40 GHz; frequency 89 GHz; in-waveguide measurements; magnetic anisotropies; millimeter wavelengths; nanomagnet materials; nanosize powder materials; natural resonance; powder material density; power sources; size 25 nm to 50 nm; sol-gel techniques; tunable backward-wave oscillators; vector network analyzer; waveguide bands; Absorption; Iron; Materials; Millimeter wave measurements; Millimeter wave technology; Permeability; Powders; Complex permittivity and permeability; free space quasi optical measurements; high-power backward wave oscillator (BWO) sources; millimeter-wave ferromagnetic resonance; nano-size epsilon aluminum ferrites; waveguide-based T/R measurement;
fLanguage
English
Journal_Title
Magnetics, IEEE Transactions on
Publisher
ieee
ISSN
0018-9464
Type
jour
DOI
10.1109/TMAG.2012.2199099
Filename
6332633
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