Title :
Microwave and Millimeter Wave Ferromagnetic Absorption of Nanoferrites
Author :
Chao, Liu ; Sharma, Anjali ; Afsar, Mohammed N.
Author_Institution :
Dept. of Electr. & Comput. Eng., Tufts Univ., Medford, MA, USA
Abstract :
Complex dielectric permittivity and magnetic permeability of several commercially available nanoferrites have been studied over a broad microwave and millimeter wave frequency range. Nano-sized barium, strontium, copper, zinc, nickel substituted iron oxide powders with different lattice structures are investigated. A transmission-reflection based in-waveguide technique that employs a vector network analyzer was used to determine the scattering parameters for each sample in two microwave bands (18-40 GHz). A free space quasi-optical spectrometer energized by backward wave oscillators was used to acquire the transmittance spectra in the millimeter wave frequency range (30-120 GHz). Relatively broad and sharp ferromagnetic resonance of hexagonal barium ferrite and strontium ferrite are observed in millimeter wave frequency range. The ferromagnetic resonance peak for nano-sized hexagonal ferrite powder material moves to lower frequencies compared to micro-sized and solid hexagonal ferrites. An X-ray diffraction measurement is performed on these hexagonal ferrites to understand the magnetic behavior and the structure.
Keywords :
X-ray diffraction; backward wave oscillators; barium compounds; copper compounds; crystal structure; ferrites; ferromagnetic materials; ferromagnetic resonance; magnetic permeability; microwave spectra; millimetre wave spectra; nanoparticles; nanostructured materials; nickel compounds; permittivity; strontium compounds; zinc compounds; BaFe12O19; CuFe2O4; Fe4NiO4Zn; SrFe12O19; X-ray diffraction measurement; backward wave oscillators; barium substituted iron oxide powders; complex dielectric permittivity; copper substituted iron oxide powders; ferromagnetic resonance peak; free space quasioptical spectrometer; frequency 18 GHz to 120 GHz; hexagonal barium ferrite; lattice structures; magnetic permeability; microwave ferromagnetic absorption; millimeter wave ferromagnetic absorption; nanoferrites; nickel substituted iron oxide powders; scattering parameters; strontium ferrite; strontium substituted iron oxide powders; transmission-reflection; vector network analyzer; zinc substituted iron oxide powders; Barium; Ferrites; Magnetic resonance; Millimeter wave measurements; Millimeter wave technology; Permeability; Permittivity; Dielectric permittivity; ferromagnetic resonance; magnetic domain; magnetic permeability; nanoferrite;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2012.2200666