Title :
Noble magnetic films for effective electromagnetic noise absorption in the gigahertz frequency range
Author :
Ono, Hiroshi ; Ito, Tetsuo ; Yoshida, Shigeyoshi ; Takase, Yasuharu ; Hashimoto, Osamu ; Shimada, Yutaka
Author_Institution :
NEC TOKIN Corp., Sendai, Japan
fDate :
7/1/2004 12:00:00 AM
Abstract :
To meet the requirement that radio-frequency (RF) electromagnetic noise absorbers must be very thin to be installed in extremely integrated electronic components, we studied a new type of granular film deposited by coevaporation. The films have a peculiar nanostructure that exhibits a magnetic anisotropy with the easy axis perpendicular to the film plane . In this paper, practical noise suppressing features and advantage of this peculiar nanostructure film are investigated, comparing with a conventional noise suppression sheet made of a composite magnetic material. First, measurements are performed using the microstrip line method , and second with a prototype of digital circuit driven at 50 MHz that produces higher harmonic current noise at frequencies over 1 GHz. In both cases, the films exhibit remarkable ability of noise absorption that suggests high possibility of a thin film absorber which works effectively to suppress noise radiation and transmission from high-speed IC leading to appreciable improvement of RF performance of various electronic components. Numerical analysis based on the finite-difference time-domain (FDTD) method was also performed assuming the noise suppression sheet placed over a microstrip line. The analysis confirmed that re-radiation of electromagnetic noise from the sheet is negligible and it is absorbed mainly by magnetic loss of the sheet material.
Keywords :
amorphous magnetic materials; finite difference time-domain analysis; interference suppression; magnetic anisotropy; magnetic microwave devices; magnetic semiconductors; magnetic thin film devices; microstrip lines; microwave integrated circuits; vapour deposition; 50 MHz; coevaporation; digital circuit; electromagnetic noise absorption; finite-difference time-domain method; gigahertz frequency range; granular film; harmonic current noise; integrated electronic components; magnetic anisotropy; magnetic films; magnetic loss; microstrip line method; nanostructure; noise suppression; sheet material; Electromagnetic interference; Electromagnetic wave absorption; Electronic components; Finite difference methods; Integrated circuit noise; Magnetic anisotropy; Magnetic films; Magnetic noise; Microstrip; Radio frequency; Coevaporation; electromagnetic noise; finite-difference time-domain method; granular film; nanostructure; noise suppression sheet;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2004.832492