Adaptive Multi-Band Negative-Group-Delay RF Circuits With Low Reflection

被引:27
作者
Gomez-Garcia, Roberto [1 ]
Munoz-Ferreras, Jose-Maria [1 ]
Psychogiou, Dimitra [2 ,3 ]
机构
[1] Univ Alcala, Dept Signal Theory & Commun, Polytech Sch, Alcala De Henares 28871, Spain
[2] Univ Colorado, Dept Elect Comp & Energy Engn, Boulder, CO 80309 USA
[3] Univ Coll Cork, Dept Elect & Elect Engn, Cork T12 K8AF, Ireland
基金
美国国家科学基金会;
关键词
Resonant frequency; Radio frequency; Couplers; Propagation losses; Resistors; Microstrip; Bandwidth; Absorptive filter; bandpass filter (BPF); bandstop filter (BSF); complementary diplexer; coupler; lossy filter; negative group delay (NGD); microstrip circuit; multi-functional circuit; planar circuit; reconfigurable circuit; reflectionless filter; RF analog signal processing; tunable circuit; wide-band filter; FILTERS; DESIGN; CAPACITANCE;
D O I
10.1109/TCSI.2021.3055416
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Two classes of frequency-reconfigurable multi-band negative-group-delay (NGD) circuit networks that feature low-input-power-reflection capabilities are reported. They consist of lossy-complementary-diplexer architectures, in which the NGD properties are obtained within the stopband regions of their lossy multi-band bandstop-filter (BSF) channel. Their complementary lossy multi-band bandpass-filter (BPF) branch absorbs in its terminating resistor the RF-input-signal energy that is not transmitted by the lossy multi-band BSF channel within its stopbands. In this manner, the input-reflectionless/absorptive behavior is realized. The theoretical foundations of the devised lossy-multi-band-BSF-based NGD structures using a coupling-routing-diagram formalism and single-to-multi-band admittance transformations are described. For the first-order case as illustration, guidelines for the synthesis in the bandpass frequency domain are provided. Furthermore, the extension of these multi-band NGD approaches to higher-order and in-series-cascade multi-stage realizations for more-general and wider-band NGD patterning, as well as to two-port/symmetrical designs, is shown. In addition, the conception of multi-functional passive components with NGD characteristics, such as wide-band BPFs and power directional couplers with embedded NGD regions, is also addressed. For experimental-demonstration purposes, an electronically-reconfigurable microstrip prototype of a two-stage-in-series-cascade dual-band NGD circuit is manufactured and measured.
引用
收藏
页码:2196 / 2209
页数:14
相关论文
共 46 条
[1]   Group Delay Equalized UWB InGaP/GaAs HBT MMIC Amplifier Using Negative Group Delay Circuits [J].
Ahn, Kyoung-Pyo ;
Ishikawa, Ryo ;
Honjo, Kazuhiko .
IEEE TRANSACTIONS ON MICROWAVE THEORY AND TECHNIQUES, 2009, 57 (09) :2139-2147
[2]  
[Anonymous], 2009, P 2 MICR NAN RES C O
[3]   NARROW-BAND MULTIPLE COUPLED CAVITY SYNTHESIS [J].
ATIA, AE ;
WILLIAMS, AE ;
NEWCOMB, RW .
IEEE TRANSACTIONS ON CIRCUITS AND SYSTEMS, 1974, CA21 (05) :649-655
[4]   Analog Signal Processing [J].
Caloz, Christophe ;
Gupta, Shulabh ;
Zhang, Qingfeng ;
Nikfal, Babak .
IEEE MICROWAVE MAGAZINE, 2013, 14 (06) :87-103
[5]  
Cameron R.J., 2007, MICROWAVE FILTERS CO
[6]   Tunable Center Frequency Negative Group Delay Filter Using Coupling Matrix Approach [J].
Chaudhary, Girdhari ;
Jeong, Yongchae .
IEEE MICROWAVE AND WIRELESS COMPONENTS LETTERS, 2017, 27 (01) :37-39
[7]   A Design of Reconfigurable Negative Group Delay Circuit Without External Resonators [J].
Chaudhary, Girdhari ;
Jeong, Yongchae ;
Im, Jaejoong .
IEEE ANTENNAS AND WIRELESS PROPAGATION LETTERS, 2015, 14 :883-886
[8]   Microstrip Line Negative Group Delay Filters for Microwave Circuits [J].
Chaudhary, Girdhari ;
Jeong, Yongchae ;
Lim, Jongsik .
IEEE TRANSACTIONS ON MICROWAVE THEORY AND TECHNIQUES, 2014, 62 (02) :234-243
[9]  
Choi H., 2011, 2011 3rd IEEE International Memory Workshop (IMW), P1
[10]   Efficiency Enhancement of Feedforward Amplifiers by Employing a Negative Group-Delay Circuit [J].
Choi, Heungjae ;
Jeong, Yongchae ;
Kim, Chul Dong ;
Kenney, J. Stevenson .
IEEE TRANSACTIONS ON MICROWAVE THEORY AND TECHNIQUES, 2010, 58 (05) :1116-1125