DocumentCode :
76437
Title :
A Class-F CMOS Oscillator
Author :
Babaie, Masoud ; Staszewski, Robert Bogdan
Author_Institution :
Delft Univ. of Technol., Delft, Netherlands
Volume :
48
Issue :
12
fYear :
2013
fDate :
Dec. 2013
Firstpage :
3120
Lastpage :
3133
Abstract :
An oscillator topology demonstrating an improved phase noise performance is proposed in this paper. It exploits the time-variant phase noise model with insights into the phase noise conversion mechanisms. The proposed oscillator is based on enforcing a pseudo-square voltage waveform around the LC tank by increasing the third-harmonic of the fundamental oscillation voltage through an additional impedance peak. This auxiliary impedance peak is realized by a transformer with moderately coupled resonating windings. As a result, the effective impulse sensitivity function (ISF) decreases thus reducing the oscillator´s effective noise factor such that a significant improvement in the oscillator phase noise and power efficiency are achieved. A comprehensive study of circuit-to-phase-noise conversion mechanisms of different oscillators´ structures shows the proposed class-F exhibits the lowest phase noise at the same tank´s quality factor and supply voltage. The prototype of the class-F oscillator is implemented in TSMC 65-nm standard CMOS. It exhibits average phase noise of -136 dBc/Hz at 3 MHz offset from the carrier over 5.9-7.6 GHz tuning range with figure-of-merit of 192 dBc/Hz. The oscillator occupies 0.12 mm2 while drawing 12 mA from 1.25 V supply.
Keywords :
CMOS analogue integrated circuits; Q-factor; microwave oscillators; network topology; oscillators; phase noise; ISF; LC tank; TSMC CMOS; auxiliary impedance peak; average phase noise; circuit-to-phase-noise conversion mechanisms; class-F CMOS oscillator; coupled resonating windings; current 12 mA; effective noise factor; frequency 3 MHz; frequency 5.9 GHz to 7.6 GHz; fundamental oscillation voltage; impulse sensitivity function; oscillator phase noise; oscillator topology; phase noise conversion mechanisms; phase noise performance; power efficiency; pseudo-square voltage waveform; quality factor; size 65 nm; supply voltage; third-harmonic; time-variant phase noise model; transformer; voltage 1.25 V; Gain; Harmonic analysis; Impedance; Phase noise; Resonant frequency; Windings; Class-F oscillator; VCO; digitally controlled oscillator; impulse sensitivity function; phase noise; transformer;
fLanguage :
English
Journal_Title :
Solid-State Circuits, IEEE Journal of
Publisher :
ieee
ISSN :
0018-9200
Type :
jour
DOI :
10.1109/JSSC.2013.2273823
Filename :
6576263
Link To Document :
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