Light-induced many-body correlations in ultracold gases

Thesis: Ph. D., Massachusetts Institute of Technology, Department of Physics, 2017. === Cataloged from PDF version of thesis. === Includes bibliographical references (pages 137-149). === In this thesis, we investigate several methods to generate and probe the quantum correlations in ultracold gases...

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Main Author: Hu, Jiazhong, Ph. D. Massachusetts Institute of Technology
Other Authors: Vladan Vuletić.
Format: Others
Language:English
Published: Massachusetts Institute of Technology 2018
Subjects:
Online Access:http://hdl.handle.net/1721.1/115012
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spelling ndltd-MIT-oai-dspace.mit.edu-1721.1-1150122019-05-02T16:32:45Z Light-induced many-body correlations in ultracold gases Hu, Jiazhong, Ph. D. Massachusetts Institute of Technology Vladan Vuletić. Massachusetts Institute of Technology. Department of Physics. Massachusetts Institute of Technology. Department of Physics. Physics. Thesis: Ph. D., Massachusetts Institute of Technology, Department of Physics, 2017. Cataloged from PDF version of thesis. Includes bibliographical references (pages 137-149). In this thesis, we investigate several methods to generate and probe the quantum correlations in ultracold gases using light. A high-finesse optical cavity is used to enhance the atom-light interaction and we can produce a variety of entangled states which can overcome the standard quantum limit. The quantum correlations are generated by sending very weak light into the cavity which contains many neutral atoms. We control the properties of the incoming photon, such as the polarization and/or the frequency spectrum, to obtain the final atomic states as desired. The photon transmitted through the cavity interacts with the atomic ensemble and becomes entangled with the atomic state. The amount of entanglement strength is usually small but non-zero. Placing a detector after the cavity, the tiny amount of entanglement will be dramatically amplified once a photon is heralded in the detector. Using this method, we demonstrated the first observation of the negative Wigner function in the many-body system, and largely extended the record of the maximum number of atoms entangled. Other than engineering entangled many-body system, we have also worked on reaching the quantum degenerate regime for the atomic gas, in order to enhance quantum correlations in future experiments. Laser cooling all the way to Bose-Einstein condensation of an alkali atom is experimentally realized for the first time. We demonstrate a special technique suppressing the binary atomic loss at high atomic density. By transferring the atoms between two different optical traps, the atomic cloud is compressed and the density is increased. Combining these with the Raman sideband cooling method, we achieve the phase space density over 1, and observe the bimodal velocity distribution characteristic of a Bose-Einstein condensate. by Jiazhong Hu. Ph. D. 2018-04-27T18:09:57Z 2018-04-27T18:09:57Z 2017 2017 Thesis http://hdl.handle.net/1721.1/115012 1029767180 eng MIT theses are protected by copyright. They may be viewed, downloaded, or printed from this source but further reproduction or distribution in any format is prohibited without written permission. http://dspace.mit.edu/handle/1721.1/7582 149 pages application/pdf Massachusetts Institute of Technology
collection NDLTD
language English
format Others
sources NDLTD
topic Physics.
spellingShingle Physics.
Hu, Jiazhong, Ph. D. Massachusetts Institute of Technology
Light-induced many-body correlations in ultracold gases
description Thesis: Ph. D., Massachusetts Institute of Technology, Department of Physics, 2017. === Cataloged from PDF version of thesis. === Includes bibliographical references (pages 137-149). === In this thesis, we investigate several methods to generate and probe the quantum correlations in ultracold gases using light. A high-finesse optical cavity is used to enhance the atom-light interaction and we can produce a variety of entangled states which can overcome the standard quantum limit. The quantum correlations are generated by sending very weak light into the cavity which contains many neutral atoms. We control the properties of the incoming photon, such as the polarization and/or the frequency spectrum, to obtain the final atomic states as desired. The photon transmitted through the cavity interacts with the atomic ensemble and becomes entangled with the atomic state. The amount of entanglement strength is usually small but non-zero. Placing a detector after the cavity, the tiny amount of entanglement will be dramatically amplified once a photon is heralded in the detector. Using this method, we demonstrated the first observation of the negative Wigner function in the many-body system, and largely extended the record of the maximum number of atoms entangled. Other than engineering entangled many-body system, we have also worked on reaching the quantum degenerate regime for the atomic gas, in order to enhance quantum correlations in future experiments. Laser cooling all the way to Bose-Einstein condensation of an alkali atom is experimentally realized for the first time. We demonstrate a special technique suppressing the binary atomic loss at high atomic density. By transferring the atoms between two different optical traps, the atomic cloud is compressed and the density is increased. Combining these with the Raman sideband cooling method, we achieve the phase space density over 1, and observe the bimodal velocity distribution characteristic of a Bose-Einstein condensate. === by Jiazhong Hu. === Ph. D.
author2 Vladan Vuletić.
author_facet Vladan Vuletić.
Hu, Jiazhong, Ph. D. Massachusetts Institute of Technology
author Hu, Jiazhong, Ph. D. Massachusetts Institute of Technology
author_sort Hu, Jiazhong, Ph. D. Massachusetts Institute of Technology
title Light-induced many-body correlations in ultracold gases
title_short Light-induced many-body correlations in ultracold gases
title_full Light-induced many-body correlations in ultracold gases
title_fullStr Light-induced many-body correlations in ultracold gases
title_full_unstemmed Light-induced many-body correlations in ultracold gases
title_sort light-induced many-body correlations in ultracold gases
publisher Massachusetts Institute of Technology
publishDate 2018
url http://hdl.handle.net/1721.1/115012
work_keys_str_mv AT hujiazhongphdmassachusettsinstituteoftechnology lightinducedmanybodycorrelationsinultracoldgases
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