Cavity QED: Adiabatic atomic cooling in cavities and evaluation of a technique for atomic homodyne detection of cotangent states.

Part I. We analyze how a decaying cavity field can lead to significant atomic cooling. This cooling can be intuitively understood by invoking the adiabatic theorem to characterize the dynamics of an atom dressed by a classical field. We find numerically that cooling can proceed well into the quantum...

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Main Author: Zaugg, Thomas Collett.
Other Authors: Meystre, Pierre
Language:en
Published: The University of Arizona. 1994
Online Access:http://hdl.handle.net/10150/186729
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spelling ndltd-arizona.edu-oai-arizona.openrepository.com-10150-1867292015-10-23T04:33:24Z Cavity QED: Adiabatic atomic cooling in cavities and evaluation of a technique for atomic homodyne detection of cotangent states. Zaugg, Thomas Collett. Meystre, Pierre Wright, Ewan M. Jessen, Poul Part I. We analyze how a decaying cavity field can lead to significant atomic cooling. This cooling can be intuitively understood by invoking the adiabatic theorem to characterize the dynamics of an atom dressed by a classical field. We find numerically that cooling can proceed well into the quantum regime where there are only a few photons left in the cavity, and where the adiabatic theorem ceases to be applicable. A physical interpretation of this final cooling stage is given. Part II. We evaluate a nonlinear atomic homodyne detection scheme for measuring the Wigner characteristic function of a microwave cavity field. We find numerically that the semiclassical approximation, on which this scheme is based, does not give results consistent with a full quantum calculation. We analyze the back-action of the measurements on steady-state 'macroscopic superpositions' that can be generated in high-Q microwave cavities. We show that the measurements required for a full characterization of the state destroys the macroscopic superposition such that it cannot be reconstructed by using the scheme that was used to generate it in the first place. 1994 text Dissertation-Reproduction (electronic) http://hdl.handle.net/10150/186729 9426557 en Copyright © is held by the author. Digital access to this material is made possible by the University Libraries, University of Arizona. Further transmission, reproduction or presentation (such as public display or performance) of protected items is prohibited except with permission of the author. The University of Arizona.
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language en
sources NDLTD
description Part I. We analyze how a decaying cavity field can lead to significant atomic cooling. This cooling can be intuitively understood by invoking the adiabatic theorem to characterize the dynamics of an atom dressed by a classical field. We find numerically that cooling can proceed well into the quantum regime where there are only a few photons left in the cavity, and where the adiabatic theorem ceases to be applicable. A physical interpretation of this final cooling stage is given. Part II. We evaluate a nonlinear atomic homodyne detection scheme for measuring the Wigner characteristic function of a microwave cavity field. We find numerically that the semiclassical approximation, on which this scheme is based, does not give results consistent with a full quantum calculation. We analyze the back-action of the measurements on steady-state 'macroscopic superpositions' that can be generated in high-Q microwave cavities. We show that the measurements required for a full characterization of the state destroys the macroscopic superposition such that it cannot be reconstructed by using the scheme that was used to generate it in the first place.
author2 Meystre, Pierre
author_facet Meystre, Pierre
Zaugg, Thomas Collett.
author Zaugg, Thomas Collett.
spellingShingle Zaugg, Thomas Collett.
Cavity QED: Adiabatic atomic cooling in cavities and evaluation of a technique for atomic homodyne detection of cotangent states.
author_sort Zaugg, Thomas Collett.
title Cavity QED: Adiabatic atomic cooling in cavities and evaluation of a technique for atomic homodyne detection of cotangent states.
title_short Cavity QED: Adiabatic atomic cooling in cavities and evaluation of a technique for atomic homodyne detection of cotangent states.
title_full Cavity QED: Adiabatic atomic cooling in cavities and evaluation of a technique for atomic homodyne detection of cotangent states.
title_fullStr Cavity QED: Adiabatic atomic cooling in cavities and evaluation of a technique for atomic homodyne detection of cotangent states.
title_full_unstemmed Cavity QED: Adiabatic atomic cooling in cavities and evaluation of a technique for atomic homodyne detection of cotangent states.
title_sort cavity qed: adiabatic atomic cooling in cavities and evaluation of a technique for atomic homodyne detection of cotangent states.
publisher The University of Arizona.
publishDate 1994
url http://hdl.handle.net/10150/186729
work_keys_str_mv AT zauggthomascollett cavityqedadiabaticatomiccoolingincavitiesandevaluationofatechniqueforatomichomodynedetectionofcotangentstates
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