DocumentCode
977559
Title
CMOS low-noise amplifier design optimization techniques
Author
Nguyen, Trung-Kien ; Kim, Chung-Hwan ; Ihm, Gook-Ju ; Yang, Moon-Su ; Lee, Sang-Gug
Author_Institution
Sch. of Eng., Inf. & Communcations Univ., Daejeon, South Korea
Volume
52
Issue
5
fYear
2004
fDate
5/1/2004 12:00:00 AM
Firstpage
1433
Lastpage
1442
Abstract
This paper reviews and analyzes four reported low-noise amplifier (LNA) design techniques applied to the cascode topology based on CMOS technology: classical noise matching, simultaneous noise and input matching (SNIM), power-constrained noise optimization, and power-constrained simultaneous noise and input matching (PCSNIM) techniques. Very simple and insightful sets of noise parameter expressions are newly introduced for the SNIM and PCSNIM techniques. Based on the noise parameter equations, this paper provides clear understanding of the design principles, fundamental limitations, and advantages of the four reported LNA design techniques so that the designers can get the overall LNA design perspective. As a demonstration for the proposed design principle of the PCSNIM technique, a very low-power folded-cascode LNA is implemented based on 0.25-μm CMOS technology for 900-MHz Zigbee applications. Measurement results show the noise figure of 1.35 dB, power gain of 12 dB, and input third-order intermodulation product of -4dBm while dissipating 1.6 mA from a 1.25-V supply (0.7 mA for the input NMOS transistor only). The overall behavior of the implemented LNA shows good agreement with theoretical predictions.
Keywords
CMOS integrated circuits; UHF amplifiers; UHF integrated circuits; circuit optimisation; integrated circuit design; integrated circuit noise; network topology; 0.25 micron; 0.7 mA; 1.25 V; 1.35 dB; 1.6 mA; 12 dB; 900 MHz; CMOS low noise amplifier design; CMOS technology; NMOS transistor; cascode topology; noise matching; noise parameter; optimization technique; power constrained noise optimization; power gain; simultaneous noise input matching; third order intermodulation product; CMOS technology; Design optimization; Equations; Gain measurement; Impedance matching; Low-noise amplifiers; Noise measurement; Power measurement; Topology; ZigBee;
fLanguage
English
Journal_Title
Microwave Theory and Techniques, IEEE Transactions on
Publisher
ieee
ISSN
0018-9480
Type
jour
DOI
10.1109/TMTT.2004.827014
Filename
1295142
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