Investigations of memory, entanglement, and long-range interactions using ultra-cold atoms

Long-term storage of quantum information has diverse applications in quantum information science. This work presents an experimental realization of quantum memories with lifetimes greater then 0.1 s. The memories are based on cold rubidium atoms confined in one-dimensional optical lattices. First re...

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Main Author: Dudin, Yaroslav
Other Authors: Kuzmich, Alex
Language:en_US
Published: Georgia Institute of Technology 2013
Subjects:
Online Access:http://hdl.handle.net/1853/49009
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spelling ndltd-GATECH-oai-smartech.gatech.edu-1853-490092013-10-30T03:30:36ZInvestigations of memory, entanglement, and long-range interactions using ultra-cold atomsDudin, YaroslavLong-range imteractionsEntanglementRydberg atomsQuantum memorySingle photonQuantum communicationQuantum entanglementQuantum statisticsLong-term storage of quantum information has diverse applications in quantum information science. This work presents an experimental realization of quantum memories with lifetimes greater then 0.1 s. The memories are based on cold rubidium atoms confined in one-dimensional optical lattices. First realization of lattice-based quantum memory and entanglement between a light field and a spin wave is presented in Chapter II. Chapter III describes two different methods (two-photon and magnetic) of compensation for inhomogeneous differential light shifts between the memory levels due to optical trapping potentials, and demonstration of entanglement between a telecom-band light field and a light-shift compensated memory qubit. Highly excited Rydberg atoms present a unique platform for study of strongly correlated systems and quantum information, because of their enormous dipole moments and consequent strong, long-range interactions. In the experiment described in Chapter IV single collective Rydberg excitations are created in a cold atomic gas. After a variable storage period the excitations are converted into light. As the principal quantum number n of the Rydberg level is increased beyond ~ 70, no more than a single excitation is retrieved from the entire mesoscopic ensemble of atoms. In Chapter V, by spatially selective conversion of the spin wave into a light field, we demonstrate that Rydberg-level interactions create long-range correlations of collective atomic excitations. These results hold promise for studies of dynamics and disorder in many-body systems with tunable interactions and for scalable quantum information networks. Chapter VI presents initial observations of coherent many-body Rabi oscillations between the ground level and a Rydberg level using several hundred cold rubidium atoms. The strongly pronounced oscillations indicate a nearly complete excitation blockade of the entire mesoscopic ensemble by a single excited atom.Georgia Institute of TechnologyKuzmich, Alex2013-09-20T12:00:14Z2013-09-20T12:00:14Z2012-06-20Dissertationhttp://hdl.handle.net/1853/49009en_US
collection NDLTD
language en_US
sources NDLTD
topic Long-range imteractions
Entanglement
Rydberg atoms
Quantum memory
Single photon
Quantum communication
Quantum entanglement
Quantum statistics
spellingShingle Long-range imteractions
Entanglement
Rydberg atoms
Quantum memory
Single photon
Quantum communication
Quantum entanglement
Quantum statistics
Dudin, Yaroslav
Investigations of memory, entanglement, and long-range interactions using ultra-cold atoms
description Long-term storage of quantum information has diverse applications in quantum information science. This work presents an experimental realization of quantum memories with lifetimes greater then 0.1 s. The memories are based on cold rubidium atoms confined in one-dimensional optical lattices. First realization of lattice-based quantum memory and entanglement between a light field and a spin wave is presented in Chapter II. Chapter III describes two different methods (two-photon and magnetic) of compensation for inhomogeneous differential light shifts between the memory levels due to optical trapping potentials, and demonstration of entanglement between a telecom-band light field and a light-shift compensated memory qubit. Highly excited Rydberg atoms present a unique platform for study of strongly correlated systems and quantum information, because of their enormous dipole moments and consequent strong, long-range interactions. In the experiment described in Chapter IV single collective Rydberg excitations are created in a cold atomic gas. After a variable storage period the excitations are converted into light. As the principal quantum number n of the Rydberg level is increased beyond ~ 70, no more than a single excitation is retrieved from the entire mesoscopic ensemble of atoms. In Chapter V, by spatially selective conversion of the spin wave into a light field, we demonstrate that Rydberg-level interactions create long-range correlations of collective atomic excitations. These results hold promise for studies of dynamics and disorder in many-body systems with tunable interactions and for scalable quantum information networks. Chapter VI presents initial observations of coherent many-body Rabi oscillations between the ground level and a Rydberg level using several hundred cold rubidium atoms. The strongly pronounced oscillations indicate a nearly complete excitation blockade of the entire mesoscopic ensemble by a single excited atom.
author2 Kuzmich, Alex
author_facet Kuzmich, Alex
Dudin, Yaroslav
author Dudin, Yaroslav
author_sort Dudin, Yaroslav
title Investigations of memory, entanglement, and long-range interactions using ultra-cold atoms
title_short Investigations of memory, entanglement, and long-range interactions using ultra-cold atoms
title_full Investigations of memory, entanglement, and long-range interactions using ultra-cold atoms
title_fullStr Investigations of memory, entanglement, and long-range interactions using ultra-cold atoms
title_full_unstemmed Investigations of memory, entanglement, and long-range interactions using ultra-cold atoms
title_sort investigations of memory, entanglement, and long-range interactions using ultra-cold atoms
publisher Georgia Institute of Technology
publishDate 2013
url http://hdl.handle.net/1853/49009
work_keys_str_mv AT dudinyaroslav investigationsofmemoryentanglementandlongrangeinteractionsusingultracoldatoms
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