Welcome to the new version of CaltechAUTHORS. Login is currently restricted to library staff. If you notice any issues, please email coda@library.caltech.edu
Published November 2004 | Submitted + Published
Journal Article Open

Anharmonic effects on a phonon-number measurement of a quantum-mesoscopic-mechanical oscillator

Abstract

We generalize a proposal for detecting single-phonon transitions in a single nanoelectromechanical system (NEMS) to include the intrinsic anharmonicity of each mechanical oscillator. In this scheme two NEMS oscillators are coupled via a term quadratic in the amplitude of oscillation for each oscillator. One NEMS oscillator is driven and strongly damped and becomes a transducer for phonon number in the other measured oscillator. We derive the conditions for this measurement scheme to be quantum limited and find a condition on the size of the anharmonicity. We also derive the relation between the phase diffusion back-action noise due to number measurement and the localization time for the measured system to enter a phonon-number eigenstate. We relate both these time scales to the strength of the measured signal, which is an induced current proportional to the position of the read-out oscillator.

Additional Information

© 2004 The American Physical Society (Received 22 March 2004; published 12 November 2004) D.H.S. is grateful to the SRC for Quantum Computer Technology at the University of Queensland for their hospitality during her extensive stay and thanks Michael Cross for useful discussions. D.H.S.'s work is supported by DARPA DSO/MOSAIC through Grant No. N00014-02-1-0602 and also supported by the NSF through a grant for the Institute for Theoretical Atomic, Molecular and Optical Physics at Harvard University and Smithsonian Astrophysical Observatory. H.S.G. would like to acknowledge financial support from Hewlett-Packard.

Attached Files

Published - SANpra04.pdf

Submitted - SANpra04preprint.pdf

Files

SANpra04preprint.pdf
Files (396.5 kB)
Name Size Download all
md5:2d9bcb5543644aa3ef1c485423370087
241.3 kB Preview Download
md5:2bb826899c6e7da775127f2115ce18a2
155.2 kB Preview Download

Additional details

Created:
August 22, 2023
Modified:
October 13, 2023