Non-equilibrium long-range phase transition in cold atoms : theory and experiment

We study the long-range force arising from the absorption of non-saturating laser beams in a two-dimensional cloud of cold atoms. The force created by the lasers is attractive and similar to the usual Newtonian gravity along the beam. The cloud is composed of bosonic strontium 88 cooled and trapp...

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Main Author: Mancois, Vincent
Other Authors: [Supervisor not in the list]
Format: Thesis-Doctor of Philosophy
Language:English
Published: Nanyang Technological University 2020
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Online Access:https://hdl.handle.net/10356/137079
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Institution: Nanyang Technological University
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spelling sg-ntu-dr.10356-1370792023-03-04T16:45:32Z Non-equilibrium long-range phase transition in cold atoms : theory and experiment Mancois, Vincent [Supervisor not in the list] School of Materials Science & Engineering Sorbonne University Pascal Viot David Wilkowski pascal.viot@upmc.fr; david.wilkowski@ntu.edu.sg Engineering::Materials We study the long-range force arising from the absorption of non-saturating laser beams in a two-dimensional cloud of cold atoms. The force created by the lasers is attractive and similar to the usual Newtonian gravity along the beam. The cloud is composed of bosonic strontium 88 cooled and trapped on the intercombination line. Transferring the atoms in a two-dimensional optical dipole trap in a magical wavelength configuration, a canonical non-equilibrium phase transition is expected. Below a critical temperature, selfgravitating particles in two dimensions can collapse, nearly by the same mechanism stars are forming. We observed experimentally transient compressions, a halfway satisfactory result originating from the power limitation of our dipole trap. The second part of the thesis focuses on the theoretical realization a minimal Brownian motor within a system of trapped particles in 2D, similarly to our experimental situation. The phenomenon characterizing the Brownian motor is the appearance of a macroscopic current of particles. We have shown that this direct transport of particles is independent of the details of the trapping potential and obtained if and only if two symmetries are jointly broken: By the presence of two heat baths along orthogonal directions together and an anisotropic trap misaligned from the temperature axes. Doctor of Philosophy 2020-02-20T02:31:31Z 2020-02-20T02:31:31Z 2018 Thesis-Doctor of Philosophy Mancois, V. (2018). Non-equilibrium long-range phase transition in cold atoms : theory and experiment. Doctoral thesis, Nanyang Technological University, Singapore. https://hdl.handle.net/10356/137079 10.32657/10356/137079 en This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License (CC BY-NC 4.0). application/pdf Nanyang Technological University
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Materials
spellingShingle Engineering::Materials
Mancois, Vincent
Non-equilibrium long-range phase transition in cold atoms : theory and experiment
description We study the long-range force arising from the absorption of non-saturating laser beams in a two-dimensional cloud of cold atoms. The force created by the lasers is attractive and similar to the usual Newtonian gravity along the beam. The cloud is composed of bosonic strontium 88 cooled and trapped on the intercombination line. Transferring the atoms in a two-dimensional optical dipole trap in a magical wavelength configuration, a canonical non-equilibrium phase transition is expected. Below a critical temperature, selfgravitating particles in two dimensions can collapse, nearly by the same mechanism stars are forming. We observed experimentally transient compressions, a halfway satisfactory result originating from the power limitation of our dipole trap. The second part of the thesis focuses on the theoretical realization a minimal Brownian motor within a system of trapped particles in 2D, similarly to our experimental situation. The phenomenon characterizing the Brownian motor is the appearance of a macroscopic current of particles. We have shown that this direct transport of particles is independent of the details of the trapping potential and obtained if and only if two symmetries are jointly broken: By the presence of two heat baths along orthogonal directions together and an anisotropic trap misaligned from the temperature axes.
author2 [Supervisor not in the list]
author_facet [Supervisor not in the list]
Mancois, Vincent
format Thesis-Doctor of Philosophy
author Mancois, Vincent
author_sort Mancois, Vincent
title Non-equilibrium long-range phase transition in cold atoms : theory and experiment
title_short Non-equilibrium long-range phase transition in cold atoms : theory and experiment
title_full Non-equilibrium long-range phase transition in cold atoms : theory and experiment
title_fullStr Non-equilibrium long-range phase transition in cold atoms : theory and experiment
title_full_unstemmed Non-equilibrium long-range phase transition in cold atoms : theory and experiment
title_sort non-equilibrium long-range phase transition in cold atoms : theory and experiment
publisher Nanyang Technological University
publishDate 2020
url https://hdl.handle.net/10356/137079
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