Atom-Chip Designs for a Trapped and Guided Matterwave Sagnac Interferometer

Matterwave interferometers have seen much progress over the last two decades, their use in precision measurements and fundamental physics has been the motivation behind this. However, these interferometers, while having substantial potential advantages over their optical counterparts due to the wave...

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Main Author: Johnson, Jamie
Format: Thesis (University of Nottingham only)
Language:English
Published: 2021
Subjects:
Online Access:https://eprints.nottingham.ac.uk/65671/
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author Johnson, Jamie
author_facet Johnson, Jamie
author_sort Johnson, Jamie
building Nottingham Research Data Repository
collection Online Access
description Matterwave interferometers have seen much progress over the last two decades, their use in precision measurements and fundamental physics has been the motivation behind this. However, these interferometers, while having substantial potential advantages over their optical counterparts due to the wave nature of atoms, also suffer a simultaneous drawback for the same reason. Atoms are incredibly sensitive to external effects and perturbations; this makes it hard to isolate atoms from the environment whilst leaving them sensitive to the effect of interest. Also, of particular challenge is the task of trapping and dynamically controlling atoms while keeping them coherent. Atom interferometers have typically relied on free-space propagation, limiting the amount of time available for interrogation. The next stage in atom interferometers is an entirely trapped, guided, and dynamically controlled system; this limits wave packet dispersion and allows for longer interrogation time by design. In this thesis, progress in constructing a radio-frequency dressed, trapped and dynamically controlled, matterwave Sagnac interferometer on an atom-chip will be discussed. Along with this, many current design limitations and solutions to these will be presented.
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publishDate 2021
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spelling nottingham-656712025-06-16T13:32:53Z https://eprints.nottingham.ac.uk/65671/ Atom-Chip Designs for a Trapped and Guided Matterwave Sagnac Interferometer Johnson, Jamie Matterwave interferometers have seen much progress over the last two decades, their use in precision measurements and fundamental physics has been the motivation behind this. However, these interferometers, while having substantial potential advantages over their optical counterparts due to the wave nature of atoms, also suffer a simultaneous drawback for the same reason. Atoms are incredibly sensitive to external effects and perturbations; this makes it hard to isolate atoms from the environment whilst leaving them sensitive to the effect of interest. Also, of particular challenge is the task of trapping and dynamically controlling atoms while keeping them coherent. Atom interferometers have typically relied on free-space propagation, limiting the amount of time available for interrogation. The next stage in atom interferometers is an entirely trapped, guided, and dynamically controlled system; this limits wave packet dispersion and allows for longer interrogation time by design. In this thesis, progress in constructing a radio-frequency dressed, trapped and dynamically controlled, matterwave Sagnac interferometer on an atom-chip will be discussed. Along with this, many current design limitations and solutions to these will be presented. 2021-08-04 Thesis (University of Nottingham only) NonPeerReviewed application/pdf en cc_by https://eprints.nottingham.ac.uk/65671/1/Atom_Chip_Designs_for_a_Trapped_and_Guided_Matterwave_Sagnac_Interferometer_15-06-21_compressed.pdf Johnson, Jamie (2021) Atom-Chip Designs for a Trapped and Guided Matterwave Sagnac Interferometer. PhD thesis, University of Nottingham. Matterwave interferometers Sagnac interferometry atoms
spellingShingle Matterwave interferometers
Sagnac interferometry
atoms
Johnson, Jamie
Atom-Chip Designs for a Trapped and Guided Matterwave Sagnac Interferometer
title Atom-Chip Designs for a Trapped and Guided Matterwave Sagnac Interferometer
title_full Atom-Chip Designs for a Trapped and Guided Matterwave Sagnac Interferometer
title_fullStr Atom-Chip Designs for a Trapped and Guided Matterwave Sagnac Interferometer
title_full_unstemmed Atom-Chip Designs for a Trapped and Guided Matterwave Sagnac Interferometer
title_short Atom-Chip Designs for a Trapped and Guided Matterwave Sagnac Interferometer
title_sort atom-chip designs for a trapped and guided matterwave sagnac interferometer
topic Matterwave interferometers
Sagnac interferometry
atoms
url https://eprints.nottingham.ac.uk/65671/