Title :
High magnetic loss Mg-Cu ferrites for ultra-high frequency EMI suppression applications
Author :
Li, J. ; Wang, X. ; Song, K. ; Li, Q. ; Gong, R. ; Su, Z. ; Chen, Y. ; Harris, V.G.
Author_Institution :
Sch. of Opt. & Electron. Inf., Huazhong Univ. of Sci. & Technol., Wuhan, China
Abstract :
Spinel ferrites have been extensively used in the design and implementation of electromagnetic interference (EMI) suppressors and EM wave absorption materials in the megahertz frequency range. It is well known that EMI absorbing magnetic materials require high initial permeability and loss factor. MnZn and NiZn spinel ferrites are often used in the lower frequency range (<; 300 MHz) due to the limit of Snoek´s law. Therefore, it is of scientific and technological importance to explore new materials with high EMI suppression performances in the ultra-high frequency range (UHF, 300 MHz-1 GHz). Recently, Mg-Cu ferrites have received attention due to their attractive magneto-dielectric properties and high-density polycrystalline growth at relatively low temperatures. Either complex permeability or permittivity is sensitive to chemical composition, sintered density and the microstructure. Control of the process makes it possible to achieve high permeability and large loss factor simultaneously in Mg-Cu ferrites for high performance EMI suppression. In this study, the influences of Cu as a substitute for Mg and sintering temperature upon microstructure and high frequency properties of Mg-Cu ferrites were investigated for their ability to suppress EMI.
Keywords :
copper compounds; crystal microstructure; eddy current losses; electromagnetic interference; electromagnetic wave absorption; ferrites; magnesium compounds; magnetic leakage; magnetic permeability; permittivity; sintering; EM wave absorption materials; EMI absorbing magnetic materials; Mg1-xCuxFe2O4; Snoek´s law; chemical composition; electromagnetic interference suppressors; frequency 300 MHz to 1 GHz; high frequency properties; high magnetic loss Mg-Cu ferrites; high-density polycrystalline growth; loss factor; magneto-dielectric properties; megahertz frequency; microstructure; permeability; permittivity; sintered density; sintering temperature; spinel ferrites; ultrahigh frequency EMI suppression applications; Electromagnetic interference; Ferrites; Magnetic losses; Magnetic resonance imaging; Permeability; Permittivity; Saturation magnetization;
Conference_Titel :
Magnetics Conference (INTERMAG), 2015 IEEE
Conference_Location :
Beijing
Print_ISBN :
978-1-4799-7321-7
DOI :
10.1109/INTMAG.2015.7156936