Title :
Millimeter-Wave Absorption as a Quality Control Tool for M-Type Hexaferrite Nanopowders
Author :
McCloy, John S. ; Korolev, Konstantin ; Crum, Jarrod V. ; Afsar, Mohammed N.
Author_Institution :
Pacific Northwest Nat. Lab., Richland, WA, USA
Abstract :
Millimeter wave (MMW) absorption measurements have been conducted on commercial samples of large (micrometer-sized) and small (nanometer-sized) particles of BaFe12O19 and SrFe12O19 using a quasi-optical MMW spectrometer and a series of backwards wave oscillators encompassing the 30-120 GHz range. Effective anisotropy of the particles calculated from the resonant absorption frequency indicates lower overall anisotropy in the nano-particles. Due to their high magnetocrystalline anisotropy, both BaFe12O19 and SrFe12O19 are expected to have spin resonances in the 45-55 GHz range. Several of the sampled BaFe12O19 powders did not have MMW absorptions, so they were further investigated by DC magnetization and x-ray diffraction to assess magnetic behavior and structure. The samples with absent MMW absorption contained primarily iron oxides, suggesting that MMW absorption could be used for quality control in hexaferrite powder manufacture.
Keywords :
X-ray diffraction; barium compounds; ferrites; magnetic anisotropy; millimetre waves; nanofabrication; nanoparticles; quality control; strontium compounds; BaFe12O19; DC magnetization; M-type hexaferrite nanopowders; MMW absorption; SrFe12O19; X-ray diffraction; commercial samples; frequency 30 GHz to 120 GHz; high magnetocrystalline anisotropy; large micrometer-sized particles; millimeter wave absorption measurements; primarily iron oxides; quality control; quality control tool; quasioptical MMW spectrometer; resonant absorption frequency; small nanometer-sized particles; spin resonances; wave oscillators; Absorption; Anisotropic magnetoresistance; Perpendicular magnetic anisotropy; Powders; Resonant frequency; Saturation magnetization; Absorbing media; ferrimagnetic materials; gyromagnetism; magnetic anisotropy; millimeter wave measurements;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2012.2208651