Title :
Analysis of multilayered CoZrNb film on-chip noise suppressor as a function of resistivity and permeability
Author :
Ma, J. ; Kijima, H. ; Yamaguchi, M.
Author_Institution :
Electr. Eng., Tohoku Univ., Sendai, Japan
Abstract :
Radio frequency integrated circuit (RF IC) is widely applied to small-size multi-function information terminal with higher data transfer rate. Because of the mixed layout of digital and analog circuits in a latest RF IC chip, the electric current-oriented magnetic noise from the digital circuit to the analog circuit will desensitize analog receiver circuit chain. A new method to use FMR losses of magnetic film was proposed and implemented for a cellular phone RF IC receiver circuit, which experimentally demonstrated good noise suppression in the LTE Band 1 (2.1 GHz range). Analysis of the noise suppressor, however, was not successful because of complicated on-chip FMR, eddy currents and magnetic field distribution associated with crossed-anisotropy multilayered Co85Zr3Nb12 film. Therefore this paper discussed not the crossed anisotropy but the uniaxially aligned multilayer of the same Co85Zr3Nb12 film (Ms= 1.0T, Hk= 1.2 kA/m, resistivity ρ=) covering on the top of MSL (microstrip line) as a model of on-chip wire by using finite element method full wave electromagnetic simulation.
Keywords :
cobalt alloys; electrical resistivity; finite element analysis; magnetic multilayers; magnetic permeability; magnetic thin film devices; magnetic thin films; metallic thin films; microstrip lines; niobium alloys; radiofrequency integrated circuits; zirconium alloys; Co85Zr3Nb12; FMR losses; LTE band; analog receiver circuit chain; cellular phone RF IC receiver circuit; crossed-anisotropy multilayered film; data transfer rate; digital circuit; eddy currents; electric current-oriented magnetic noise; finite element method full wave electromagnetic simulation; magnetic field distribution; magnetic film; mixed layout; multilayered CoZrNb film on-chip noise suppressor analysis; on-chip FMR; on-chip wire model; permeability; radiofrequency integrated circuit chip; resistivity; small-size multifunction information terminal; uniaxially aligned multilayer; Magnetic films; Magnetic noise; Magnetic resonance; Magnetic shielding; Noise; Permeability;
Conference_Titel :
Magnetics Conference (INTERMAG), 2015 IEEE
Conference_Location :
Beijing
Print_ISBN :
978-1-4799-7321-7
DOI :
10.1109/INTMAG.2015.7156971