Surpassing Fundamental Limits of Oscillators Using Nonlinear Resonators
Abstract
In its most basic form an oscillator consists of a resonator driven on resonance, through feedback, to create a periodic signal sustained by a static energy source. The generation of a stable frequency, the basic function of oscillators, is typically achieved by increasing the amplitude of motion of the resonator while remaining within its linear, harmonic regime. Contrary to this conventional paradigm, in this Letter we show that by operating the oscillator at special points in the resonator's anharmonic regime we can overcome fundamental limitations of oscillator performance due to thermodynamic noise as well as practical limitations due to noise from the sustaining circuit. We develop a comprehensive model that accounts for the major contributions to the phase noise of the nonlinear oscillator. Using a nanoelectromechanical system based oscillator, we experimentally verify the existence of a special region in the operational parameter space that enables suppressing the most significant contributions to the oscillator's phase noise, as predicted by our model.
Additional Information
© 2013 American Physical Society. Received 19 October 2012; revised manuscript received 11 December 2012; published 26 April 2013. This work was supported by the Defense Advanced Research Projects Agency Microsystems Technology Office, Dynamic Enabled Frequency Sources Program (DEFYS) through Department of Interior (FA8650-10-1- 7029). L. G.V. acknowledges financial support from the European Commission (PIOF-GA-2008-220682).Attached Files
Published - PhysRevLett.110.177208.pdf
Submitted - 1210.8075.pdf
Supplemental Material - README.TXT
Supplemental Material - Roukes_SI.pdf
Files
Additional details
- PMCID
- PMC3839326
- Eprint ID
- 36517
- Resolver ID
- CaltechAUTHORS:20130122-143413954
- Defense Advanced Research Projects Agency (DARPA)
- FA8650-10-1-7029
- Marie Curie Fellowship
- PIOF-GA-2008-220682
- Created
-
2013-01-22Created from EPrint's datestamp field
- Updated
-
2021-11-09Created from EPrint's last_modified field