Title :
Design method of miniaturized HTS coplanar waveguide bandpass filters using cross coupling
Author :
Kanaya, H. ; Fujiyama, J. ; Oba, R. ; Yoshida, K.
Author_Institution :
Dept. of Electron., Kyushu Univ., Fukuoka, Japan
fDate :
6/1/2003 12:00:00 AM
Abstract :
A new design method of miniaturizing HTS coplanar waveguide bandpass filters using cross coupling is presented. When the size of the filter decreases, the cross coupling between the resonators tends to appear, which causes attenuation poles. In order to control the cross-coupling section, we redesigned the meanderline interval and shape, so that we can design the frequency and number of the attenuation poles. The half-wave length resonator bandpass filter (BPF) is designed by using the 2.5-dimensional electromagnetic field simulator. 7-pole cross-coupled CPW BPF (center frequency of 2 GHz, bandwidth of 15 MHz, ripple of 0.1 dB and two attenuation poles on both sides of pass band) is packed within 6 mm×10 mm substrate. Simulated performance is in good agreement with the designed one. This BPF has the skirt steepness of 20 dB/MHz (40 dB attenuation), which is the same skirt characteristic of 11-pole Chebyshev BPF. Moreover, we tested YBCO BPF by using our present design theory at cryogenic temperature.
Keywords :
Chebyshev filters; UHF filters; band-pass filters; barium compounds; coplanar waveguide components; high-temperature superconductors; microwave filters; passive filters; poles and zeros; resonator filters; superconducting microwave devices; superconducting resonators; waveguide filters; yttrium compounds; 10 GHz; 10 mm; 15 MHz; 2 GHz; 6 mm; HTS CPW bandpass filters; YBCO filter; YBaCuO; attenuation poles; coplanar waveguide bandpass filters; cross coupling; filter design method; half-wave length resonator filter; meanderline interval; meanderline shape; miniaturized HTS bandpass filters; Attenuation; Band pass filters; Coplanar waveguides; Design methodology; Electromagnetic fields; Electromagnetic waveguides; Frequency; High temperature superconductors; Resonator filters; Shape control;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2003.813702