T-SHAPED I/O FEED BASED DIFFERENTIAL BANDPASS FILTER WITH SYMMETRICAL TRANSMISSION ZEROS AND HIGH COMMON MODE REJECTION RATIO
Author(s) -
Rida Gadhafi,
Dan Cracan,
Ademola Akeem Mustapha,
Mihai Sanduleanu
Publication year - 2020
Publication title -
progress in electromagnetics research m
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.216
H-Index - 31
ISSN - 1937-8726
DOI - 10.2528/pierm19111804
Subject(s) - band pass filter , common mode signal , filter (signal processing) , differential (mechanical device) , mode (computer interface) , control theory (sociology) , transmission (telecommunications) , mathematics , topology (electrical circuits) , materials science , physics , computer science , optics , telecommunications , combinatorics , control (management) , artificial intelligence , analog signal , computer vision , thermodynamics , operating system
A T-shaped feed based differential microstrip bandpass filter (BPF) with high commonmode (CM) rejection ratio is presented. The filter comprises two magnetically coupled conventional square open-loop resonators (SOLRs), with capacitive coupled T-shaped input-output (I/O). The choice of the T-shaped I/O coupling feed enables a higher common-mode suppression of −57 dB at fd 0 that extends up to 4.1fd 0 with a value better than −30 dB. Frequency fd 0 is the cutoff frequency of the differential-mode (DM) passband. Moreover, this feed can symmetrically position two transmission zeros (TZs) at the upper and lower stopbands. This yields a highly selective and compact filter. Additionally, a T-shaped feed only excites the odd mode of the filter resulting in a wide stopband with high out of band rejection. The upper and stopband rejection of the filter is better than −50 dB. To demonstrate the design, DM and CM lumped models of the filter are proposed and studied. The filter operates at 1.263 GHz with a fractional bandwidth (FBW) of 3.9%. The design is validated experimentally by characterizing DM, CM, common-mode to differential-mode (CD), and differential-mode to common mode (DC). Moreover, the group delay (GD) response of the filter is measured, and a significantly flat response is observed with a maximum delay variation of only 0.88 ns in the 3 dB bandwidth.
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