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Systematic design of 7‐to‐40‐GHz on‐chip mixer based on optimal impedance deviation coefficient
Author(s) -
Li Yao,
Zhu XiaoWei,
Liu RuiJia,
Tian Ling
Publication year - 2020
Publication title -
international journal of rf and microwave computer‐aided engineering
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.335
H-Index - 39
eISSN - 1099-047X
pISSN - 1096-4290
DOI - 10.1002/mmce.22144
Subject(s) - monolithic microwave integrated circuit , wideband , balun , high electron mobility transistor , bandwidth (computing) , electrical impedance , materials science , insertion loss , microwave , electronic engineering , electrical engineering , gallium arsenide , chip , impedance matching , optoelectronics , engineering , transistor , telecommunications , voltage , amplifier , antenna (radio)
In this article, a 7‐GHz to 40‐GHz ultra‐wideband passive double‐balanced mixer MMIC using compact wideband Marchand balun (CWMB) is presented. The CWMB is analyzed and designed by introducing a novel optimal impedance deviation coefficient. A trade‐off between the needed bandwidth and the acceptable insertion loss in an ultra‐wideband passive‐doubly‐balanced mixer design can be made through introducing the optimal impedance deviation coefficient. Finally, to verify the proposed methodology, a compact wideband passive double‐balanced mixer monolithic microwave integrated circuit (MMIC) was designed and fabricated using a standard gallium arsenide (GaAs) pHEMT technology according to the process characteristics. Experimental results show that an ultra‐wideband mixer MMIC is realized from 7 GHz to 40 GHz (140% fractional bandwidth) with a measured conversion loss between 9.5 dB~12.5 dB (in‐band fluctuation less than 3 dB) and a LO‐to‐RF isolation larger than 34 dB. The measurement results are in good agreement with the simulation results.

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