Cavity-enabled spin squeezing for a quantum-enhanced atomic clock

Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Physics, 2011. === Cataloged from PDF version of thesis. === Includes bibliographical references (p. 127-135). === For the past decade, the stability of microwave atomic clocks has stood at the standard quantum limit, set by the projec...

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Main Author: Schleier-Smith, Monika Helene
Other Authors: Vladan Vuletić.
Format: Others
Language:English
Published: Massachusetts Institute of Technology 2012
Subjects:
Online Access:http://hdl.handle.net/1721.1/68878
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spelling ndltd-MIT-oai-dspace.mit.edu-1721.1-688782019-05-02T15:43:42Z Cavity-enabled spin squeezing for a quantum-enhanced atomic clock Schleier-Smith, Monika Helene Vladan Vuletić. Massachusetts Institute of Technology. Dept. of Physics. Massachusetts Institute of Technology. Dept. of Physics. Physics. Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Physics, 2011. Cataloged from PDF version of thesis. Includes bibliographical references (p. 127-135). For the past decade, the stability of microwave atomic clocks has stood at the standard quantum limit, set by the projection noise inherent in measurements on ensembles of uncorrelated particles. Here, I demonstrate an atomic clock that surpasses this limit by operating with atoms in a particular type of entangled state called a "squeezed spin state." The generation of non-classical spin correlations in a dilute cloud of atoms is facilitated by an optical cavity, which allows for strong collective coupling of the atomic ensemble to a single mode of light. Since the light exiting the cavity is entangled with the atoms, an appropriate measurement performed on the light field can project the atomic ensemble into a squeezed spin state. I demonstrate 3.0(8) dB of spin squeezing by this method of quantum non-demolition measurement. I further introduce a new method, cavity feedback squeezing, which uses the light field circulating in the resonator to mediate an effective interaction among the atoms. The light-mediated interaction mimics the spin dynamics of the one-axis twisting Hamiltonian, under which a coherent spin state evolves deterministically into a squeezed spin state. The states prepared by cavity feedback are intrinsically squeezed by up to 10(1) dB and detectably squeezed by up to 5.6(6) dB. Applied in an atomic clock, they produce an Allan variance 4.7(5) dB below the standard quantum limit for averaging times of up to 50 s. In a detour from engineering collective spin dynamics, I present direct observations of collective motional dynamics of atoms under the influence of cavity cooling. I demonstrate cooperatively enhanced cooling of a single collective motional mode down to a mean occupation number of 2.0 (-0.3/+0.9) phonons. The cooling is quantitatively well described by a simple, analytic quantum optomechanical model. by Monika Helene Schleier-Smith. Ph.D. 2012-01-30T16:56:54Z 2012-01-30T16:56:54Z 2011 2011 Thesis http://hdl.handle.net/1721.1/68878 773290150 eng M.I.T. theses are protected by copyright. They may be viewed from this source for any purpose, but reproduction or distribution in any format is prohibited without written permission. See provided URL for inquiries about permission. http://dspace.mit.edu/handle/1721.1/7582 135 p. application/pdf Massachusetts Institute of Technology
collection NDLTD
language English
format Others
sources NDLTD
topic Physics.
spellingShingle Physics.
Schleier-Smith, Monika Helene
Cavity-enabled spin squeezing for a quantum-enhanced atomic clock
description Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Physics, 2011. === Cataloged from PDF version of thesis. === Includes bibliographical references (p. 127-135). === For the past decade, the stability of microwave atomic clocks has stood at the standard quantum limit, set by the projection noise inherent in measurements on ensembles of uncorrelated particles. Here, I demonstrate an atomic clock that surpasses this limit by operating with atoms in a particular type of entangled state called a "squeezed spin state." The generation of non-classical spin correlations in a dilute cloud of atoms is facilitated by an optical cavity, which allows for strong collective coupling of the atomic ensemble to a single mode of light. Since the light exiting the cavity is entangled with the atoms, an appropriate measurement performed on the light field can project the atomic ensemble into a squeezed spin state. I demonstrate 3.0(8) dB of spin squeezing by this method of quantum non-demolition measurement. I further introduce a new method, cavity feedback squeezing, which uses the light field circulating in the resonator to mediate an effective interaction among the atoms. The light-mediated interaction mimics the spin dynamics of the one-axis twisting Hamiltonian, under which a coherent spin state evolves deterministically into a squeezed spin state. The states prepared by cavity feedback are intrinsically squeezed by up to 10(1) dB and detectably squeezed by up to 5.6(6) dB. Applied in an atomic clock, they produce an Allan variance 4.7(5) dB below the standard quantum limit for averaging times of up to 50 s. In a detour from engineering collective spin dynamics, I present direct observations of collective motional dynamics of atoms under the influence of cavity cooling. I demonstrate cooperatively enhanced cooling of a single collective motional mode down to a mean occupation number of 2.0 (-0.3/+0.9) phonons. The cooling is quantitatively well described by a simple, analytic quantum optomechanical model. === by Monika Helene Schleier-Smith. === Ph.D.
author2 Vladan Vuletić.
author_facet Vladan Vuletić.
Schleier-Smith, Monika Helene
author Schleier-Smith, Monika Helene
author_sort Schleier-Smith, Monika Helene
title Cavity-enabled spin squeezing for a quantum-enhanced atomic clock
title_short Cavity-enabled spin squeezing for a quantum-enhanced atomic clock
title_full Cavity-enabled spin squeezing for a quantum-enhanced atomic clock
title_fullStr Cavity-enabled spin squeezing for a quantum-enhanced atomic clock
title_full_unstemmed Cavity-enabled spin squeezing for a quantum-enhanced atomic clock
title_sort cavity-enabled spin squeezing for a quantum-enhanced atomic clock
publisher Massachusetts Institute of Technology
publishDate 2012
url http://hdl.handle.net/1721.1/68878
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