DocumentCode :
1234415
Title :
New approaches for designing microstrip filters utilizing mixed dielectrics
Author :
Semouchkina, Elena ; Baker, Amanda ; Semouchkin, George B. ; Lanagan, Michael ; Mittra, Raj
Author_Institution :
Mater. Res. Inst., Pennsylvania State Univ., University Park, PA
Volume :
53
Issue :
2
fYear :
2005
Firstpage :
644
Lastpage :
652
Abstract :
A strategy is developed for designing capacitively loaded microstrip filters on low-temperature co-fired ceramic (LTCC) substrates with inclusions or superstrate layers of higher permittivity dielectrics. Finite-difference time-domain simulations of the field distribution at resonant frequencies are used to determine the optimal locations and size of capacitive loads. It is demonstrated that strategic capacitive load placement enables altering the center and attenuation pole frequencies, the shape and width of the passband, and input impedance of the filter by modification of selected resonant modes. Capacitive loading with higher permittivity dielectrics is shown to be very efficient in decreasing dimensions of microstrip filters with low-permittivity substrates. The designs of novel compact resonators and filters have been developed and the prototypes fabricated by using LTCC technology. The results of prototype measurements agree with the simulation results, which validates the proposed approach
Keywords :
ceramics; dielectric materials; finite difference time-domain analysis; microstrip filters; microstrip resonators; permittivity; LTCC substrates; attenuation pole frequencies; capacitively loaded microstrip filters; field distribution; finite difference time domain simulations; inclusions; input impedance; low permittivity substrates; low temperature cofired ceramic substrates; microstrip resonators; passband shape; passband width; permittivity dielectrics; resonant frequencies; resonant modes; superstrate layers; Attenuation; Ceramics; Dielectric substrates; Finite difference methods; Microstrip filters; Permittivity; Resonant frequency; Resonator filters; Shape; Time domain analysis; Electromagnetic fields; finite-difference timedomain (FDTD) methods; microstrip filters; resonance;
fLanguage :
English
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9480
Type :
jour
DOI :
10.1109/TMTT.2004.840741
Filename :
1393208
Link To Document :
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