TY - JOUR
T1 - Analysis and design of new single-to-balanced multicoupled line bandpass filters using low-temperature co-fired ceramic technology
AU - Tsai, Chin Lung
AU - Lin, Yo Shen
N1 - Funding Information:
Manuscript received January 29, 2008; revised August 30, 2008. First published November 18, 2008; current version published December 05, 2008. This work was supported in part by the National Science Council of Taiwan under Grant NSC 95-2221-E-008-022. The authors are with the Department of Electrical Engineering, National Central University, Chungli 320, Taiwan (e-mail: [email protected]). Digital Object Identifier 10.1109/TMTT.2008.2007186
PY - 2008/12
Y1 - 2008/12
N2 - This paper presents the design procedure and performance of a new single-to-balanced multicoupled line bandpass filter structure. The proposed filter is composed of a multicoupled line of electric length much shorter than λ/8 along with shunt capacitors loaded at suitable positions. By a proper design of ground terminations for the multicoupled line, the proposed filter is simultaneously equipped with the functionality of a bandpass filter, a balun, and an impedance transformer. The bandpass characteristic can be easily developed to higher order for better selectivity. The graph-transformation method for coupled-line analysis is adopted to make the design procedure efficient and intuitive. To validate the design procedure and feasibility of proposed filter for mobile applications, two design examples with different filter order, impedance transformation ratio, fractional bandwidth and center frequency have been implemented in chip type by using the low temperature co-fired ceramic technology. The second-order design is realized in a chip size of 2012, while the third-order one is realized in a chip size of 2612. Moreover, an additional transmission zero in the upper stopband can be achieved and controlled flexibly by adjusting the outer printed circuit board layout with minimum effect on passband performance. Fabrication and measurement of these designs show that compact sizes and good agreements between measured and simulated results can be obtained, which demonstrate their suitability in modern mobile communication applications.
AB - This paper presents the design procedure and performance of a new single-to-balanced multicoupled line bandpass filter structure. The proposed filter is composed of a multicoupled line of electric length much shorter than λ/8 along with shunt capacitors loaded at suitable positions. By a proper design of ground terminations for the multicoupled line, the proposed filter is simultaneously equipped with the functionality of a bandpass filter, a balun, and an impedance transformer. The bandpass characteristic can be easily developed to higher order for better selectivity. The graph-transformation method for coupled-line analysis is adopted to make the design procedure efficient and intuitive. To validate the design procedure and feasibility of proposed filter for mobile applications, two design examples with different filter order, impedance transformation ratio, fractional bandwidth and center frequency have been implemented in chip type by using the low temperature co-fired ceramic technology. The second-order design is realized in a chip size of 2012, while the third-order one is realized in a chip size of 2612. Moreover, an additional transmission zero in the upper stopband can be achieved and controlled flexibly by adjusting the outer printed circuit board layout with minimum effect on passband performance. Fabrication and measurement of these designs show that compact sizes and good agreements between measured and simulated results can be obtained, which demonstrate their suitability in modern mobile communication applications.
KW - Bandpass filter
KW - Impedance transformation
KW - Low-temperature co-fired ceramic (LTCC)
KW - Multicoupled line
KW - Single-to-balanced
UR - http://www.scopus.com/inward/record.url?scp=57849144241&partnerID=8YFLogxK
U2 - 10.1109/TMTT.2008.2007186
DO - 10.1109/TMTT.2008.2007186
M3 - 期刊論文
AN - SCOPUS:57849144241
SN - 0018-9480
VL - 56
SP - 2902
EP - 2912
JO - IEEE Transactions on Microwave Theory and Techniques
JF - IEEE Transactions on Microwave Theory and Techniques
IS - 12
M1 - 4682652
ER -