Published April 2, 2004 | Version Published
Book Section - Chapter Open

Cooling a nanomechanical resonator using feedback: toward quantum behavior

Abstract

Nano-electro-mechanical devices are now rapidly approaching the point where it will be possible to observe quantum mechanical behavior. However, for such behavior to be visible it is necessary to reduce the thermal motion of these devices down to temperatures in the millikelvin range. Here we consider the use of feedback control for this purpose. We analyze an experimentally realizable situation in which the position of the resonator is continuously monitored by a Single-Electron Transistor. Because the resonator is harmonic, it is possible to use a classical description of the measurement process, and we discuss both the quantum and classical descriptions. Because of this the optimal feedback algorithm can be calculated using classical control theory. We examine the quantum state of the controlled oscillator, and the achievable effective temperature. Our estimates indicate that with current experimental technology, feedback cooling is likely to bring the required milliKelvin temperatures within reach.

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© 2004 SPIE.

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Eprint ID
67264
Resolver ID
CaltechAUTHORS:20160523-150508492

Dates

Created
2016-05-23
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Updated
2021-11-11
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Series Name
Proceedings of SPIE
Series Volume or Issue Number
5276