Coherent Spin Dynamics of a Spin-1 Bose-Einstein Condensate

Bose-Einstein condensation (BEC) is a phenomenon in which identical bosons occupy the same quantum state below a certain critical temperature. A hallmark of BEC is the coherence between particles every particle shares the same quantum wavefunction and phase. This coherence has been demonstrated f...

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Main Author: Chang, Ming-Shien
Format: Others
Language:en_US
Published: Georgia Institute of Technology 2006
Subjects:
BEC
Online Access:http://hdl.handle.net/1853/10547
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spelling ndltd-GATECH-oai-smartech.gatech.edu-1853-105472013-01-07T20:14:00ZCoherent Spin Dynamics of a Spin-1 Bose-Einstein CondensateChang, Ming-ShienBose-Einstein condensateBECSpinor condensateAll-optical BECCoherent spin mixingAC Josephson effectTunnelingMiscibilitySpin domainAtomic four-wave mixingSpin wavesSingle-mode approximationBose-Einstein condensation (BEC) is a phenomenon in which identical bosons occupy the same quantum state below a certain critical temperature. A hallmark of BEC is the coherence between particles every particle shares the same quantum wavefunction and phase. This coherence has been demonstrated for the external (motional) degrees of freedom of the atomic condensates by interfering two condensates. In this thesis, the coherence is shown to extend to the internal spin degrees of freedom of a spin-1 Bose gas evidenced by the observed coherent and reversible spin-changing collisions. The observed coherent dynamics are analogous to Josephson oscillations in weakly connected superconductors and represent a type of matter-wave four-wave mixing. Control of the coherent evolution of the system using magnetic fields is also demonstrated. The studies on spinor condensates begin by creating spinor condensates directly using all-optical approaches that were first developed in our laboratory. All-optical formation of Bose-Einstein condensates (BEC) in 1D optical lattice and single focus trap geometries are developed and presented. These techniques offer considerable flexibility and speed compared to magnetic trap approaches, and the trapping potential can be essentially spin-independent and are ideally suited for studying spinor condensates. Using condensates with well-defined initial non-equilibrium spin configuration, spin mixing of F = 1 and F = 2 spinor condensates of rubidium-87 atoms confined in an optical trap is observed. The equilibrium spin configuration in the F = 1 manifold confirms that 87Rb is ferromagnetic. The coherent spinor dynamics are demonstrated by initiating spin mixing deterministically with a non-stationary spin population configuration. Finally, the interplay between the coherent spin mixing and spatial dynamics in spin-1 condensates with ferromagnetic interactions is investigated.Georgia Institute of Technology2006-06-09T18:22:15Z2006-06-09T18:22:15Z2006-04-11Dissertation2648323 bytesapplication/pdfhttp://hdl.handle.net/1853/10547en_US
collection NDLTD
language en_US
format Others
sources NDLTD
topic Bose-Einstein condensate
BEC
Spinor condensate
All-optical BEC
Coherent spin mixing
AC Josephson effect
Tunneling
Miscibility
Spin domain
Atomic four-wave mixing
Spin waves
Single-mode approximation
spellingShingle Bose-Einstein condensate
BEC
Spinor condensate
All-optical BEC
Coherent spin mixing
AC Josephson effect
Tunneling
Miscibility
Spin domain
Atomic four-wave mixing
Spin waves
Single-mode approximation
Chang, Ming-Shien
Coherent Spin Dynamics of a Spin-1 Bose-Einstein Condensate
description Bose-Einstein condensation (BEC) is a phenomenon in which identical bosons occupy the same quantum state below a certain critical temperature. A hallmark of BEC is the coherence between particles every particle shares the same quantum wavefunction and phase. This coherence has been demonstrated for the external (motional) degrees of freedom of the atomic condensates by interfering two condensates. In this thesis, the coherence is shown to extend to the internal spin degrees of freedom of a spin-1 Bose gas evidenced by the observed coherent and reversible spin-changing collisions. The observed coherent dynamics are analogous to Josephson oscillations in weakly connected superconductors and represent a type of matter-wave four-wave mixing. Control of the coherent evolution of the system using magnetic fields is also demonstrated. The studies on spinor condensates begin by creating spinor condensates directly using all-optical approaches that were first developed in our laboratory. All-optical formation of Bose-Einstein condensates (BEC) in 1D optical lattice and single focus trap geometries are developed and presented. These techniques offer considerable flexibility and speed compared to magnetic trap approaches, and the trapping potential can be essentially spin-independent and are ideally suited for studying spinor condensates. Using condensates with well-defined initial non-equilibrium spin configuration, spin mixing of F = 1 and F = 2 spinor condensates of rubidium-87 atoms confined in an optical trap is observed. The equilibrium spin configuration in the F = 1 manifold confirms that 87Rb is ferromagnetic. The coherent spinor dynamics are demonstrated by initiating spin mixing deterministically with a non-stationary spin population configuration. Finally, the interplay between the coherent spin mixing and spatial dynamics in spin-1 condensates with ferromagnetic interactions is investigated.
author Chang, Ming-Shien
author_facet Chang, Ming-Shien
author_sort Chang, Ming-Shien
title Coherent Spin Dynamics of a Spin-1 Bose-Einstein Condensate
title_short Coherent Spin Dynamics of a Spin-1 Bose-Einstein Condensate
title_full Coherent Spin Dynamics of a Spin-1 Bose-Einstein Condensate
title_fullStr Coherent Spin Dynamics of a Spin-1 Bose-Einstein Condensate
title_full_unstemmed Coherent Spin Dynamics of a Spin-1 Bose-Einstein Condensate
title_sort coherent spin dynamics of a spin-1 bose-einstein condensate
publisher Georgia Institute of Technology
publishDate 2006
url http://hdl.handle.net/1853/10547
work_keys_str_mv AT changmingshien coherentspindynamicsofaspin1boseeinsteincondensate
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