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A novel compact bandpass filter using a novel microstrip three‐mode resonator obtaining low loss and sharp attenuation
Author(s) -
He Wenqing,
Ma Zhewang,
Chen ChunPing,
Anada Tetsuo
Publication year - 2009
Publication title -
microwave and optical technology letters
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.304
H-Index - 76
eISSN - 1098-2760
pISSN - 0895-2477
DOI - 10.1002/mop.24681
Subject(s) - passband , band pass filter , insertion loss , resonator , stub (electronics) , microstrip , elliptic filter , materials science , optics , helical resonator , waveguide filter , butterworth filter , high pass filter , filter (signal processing) , electronic engineering , acoustics , optoelectronics , prototype filter , physics , electrical engineering , low pass filter , engineering
A novel compact ultra‐wideband bandpass filter is designed by using a microstrip three‐mode resonator. The three‐mode resonator is configured by adding a short‐circuited stub and an open stub to a half‐wavelength resonator, and its first three modes are designed to cover a very wide passband. The resonator is fed by parallel‐coupled quarter‐wavelength lines. As a consequence, five reflection zeros are obtained in the passband covering ∼3.4–10.1 GHz. As the filter consists of only one resonator, it is very small and low loss, with measured insertion loss better than 0.6 dB in the passband. The group delay is very flat over the passband, and is about 0.5 ns at the center frequency. Moreover, the filter has multiple transmission zeros near its passband, and exhibits thereby sharp skirt property. The minimum strip‐width and gap‐width in the filter is 0.2 mm and 0.1 mm, respectively, and no complicated backside‐aperture‐fabrication process is required. So the filter can be fabricated easily at low cost. The measured frequency response of the filter agrees favorably with the predicted one, and the Federal Communications Commissions indoor limit is satisfied well. © 2009 Wiley Periodicals, Inc. Microwave Opt Technol Lett 51: 2547–2551, 2009; Published online in Wiley InterScience (www.interscience.wiley.com). DOI 10.1002/mop.24681