Title :
Novel Compact and Low-Loss Phase Shifters With Magnetodielectric Disturber
Author :
Yang, Guo-Min ; Lou, Jing ; Obi, Ogheneyunume ; Sun, Nian X.
Author_Institution :
Dept. of Commun. Sci. & Eng., Fudan Univ., Shanghai, China
fDate :
5/1/2011 12:00:00 AM
Abstract :
Magnetodielectric materials show great potential in tunable phase shifter designs with their high relative permeability and high permittivity. This paper presents a novel compact and low-loss tunable S-band phase shifter with a magnetodielectric perturber on a meander line microstrip controlled by a piezoelectric transducer. Compared with traditional dielectric perturbation, the phase tunability of the meander line with magnetodielectric perturber is much larger while the insertion loss is not much affected. Self-biased NiCo-ferrite films were adopted to fabricate the magnetodielectric perturber, which is a ferrite/substrate/ferrite laminate sandwich structure on a commercially available Rogers dielectric substrate. Phase shifter designs with NiCo-ferrite films on one layer to three layers of the sandwich structure were compared and investigated. Relative phase shift of 40° and large phase shift per dB insertion loss of up to 500°/dB were observed at S-band. The proposed S-band phase shifters are compact and will have many potential applications in radars and wireless communication systems.
Keywords :
dielectric materials; ferrite phase shifters; ferrites; microstrip lines; microwave phase shifters; nickel compounds; piezoelectric transducers; NiCo; Roger dielectric substrate; dielectric perturbation; ferrite laminate; insertion loss; low-loss tunable S-band phase shifter; magnetodielectric disturber; magnetodielectric materials; magnetodielectric perturber; meander microstrip line; permittivity; piezoelectric transducer; relative permeability; self-biased NiCo-ferrite films; wireless communication systems; Ferrites; Insertion loss; Microstrip; Phase shifters; Positron emission tomography; Sandwich structures; Magnetic films; meander line; self-biased ferrite films; tunable phase shifter;
Journal_Title :
Microwave and Wireless Components Letters, IEEE
DOI :
10.1109/LMWC.2011.2123085