DocumentCode
57836
Title
A Flicker Noise/IM3 Cancellation Technique for Active Mixer Using Negative Impedance
Author
Wei Cheng ; Annema, A.J. ; Wienk, G.J.M. ; Nauta, Bram
Author_Institution
IC-Design Group, Univ. of Twente, Enschede, Netherlands
Volume
48
Issue
10
fYear
2013
fDate
Oct. 2013
Firstpage
2390
Lastpage
2402
Abstract
This paper presents an approach to simultaneously cancel flicker noise and IM3 in Gilbert-type mixers, utilizing negative impedances. For proof of concept, two prototype double-balanced mixers in 0.16- μm CMOS are fabricated. The first demonstration mixer chip was optimized for full IM3 cancellation and partial flicker noise cancellation; this chip achieves 9-dB flicker noise suppression, improvements of 10 dB for IIP3, 5 dB for conversion gain, and 1 dB for input P1 dB while the thermal noise increased by 0.1 dB. The negative impedance increases the power consumption for the mixer by 16% and increases the die area by 8% (46 × 28 μm 2). A second demonstration mixer chip aims at full flicker noise cancellation and partial IM3 cancellation, while operating on a low supply voltage (0.67 × VDD); in this chip, the negative impedance increases the power consumption by 7.3% and increases the die area by 7% (50 × 20 μm 2). For one chip sample, measurements show >10-dB flicker noise suppression within ±200% variation of the negative impedance bias current; for ten randomly selected chip samples, >11-dB flicker noise suppression is measured.
Keywords
electric impedance; flicker noise; interference suppression; mixers (circuits); thermal noise; Gilbert-type mixers; active mixer chip; die area; flicker noise suppression; negative impedance bias current; partial IM3 cancellation; partial flicker noise cancellation; power consumption; thermal noise; Impedance; Mixers; Noise cancellation; Switches; Thermal noise; Transistors; Active mixer; CMOS; IIP3; IM3; direct conversion; distortion cancellation; flicker noise; linearity; narrowband; noise cancellation; receiver;
fLanguage
English
Journal_Title
Solid-State Circuits, IEEE Journal of
Publisher
ieee
ISSN
0018-9200
Type
jour
DOI
10.1109/JSSC.2013.2272339
Filename
6567997
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