An optical lattice clock with neutral strontium

<p>Strontium optical lattice clocks can measure the passage of time with extraordinary precision. Capitalising on this precision, we can anticipate the deployment of lattice clocks to search for new physics beyond the standard model, to build new technologies for geodesy and navigation, and po...

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Bibliographic Details
Main Author: Hobson, R
Other Authors: Gill, P
Format: Thesis
Published: 2016
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author Hobson, R
author2 Gill, P
author_facet Gill, P
Hobson, R
author_sort Hobson, R
collection OXFORD
description <p>Strontium optical lattice clocks can measure the passage of time with extraordinary precision. Capitalising on this precision, we can anticipate the deployment of lattice clocks to search for new physics beyond the standard model, to build new technologies for geodesy and navigation, and potentially to underpin a future redenition of the SI second.</p> <p>This thesis reports on the construction and evaluation of a robust Sr optical lattice clock at NPL. We describe the apparatus needed to capture, cool, and load samples of neutral strontium atoms into a magic-wavelength, far off-resonant lattice trap at 813 nm. We provide details of our optical local oscillator - the "clock laser" - and how it is used to realise an Sr-referenced optical frequency standard. We rigorously characterise the various contributing factors which limit the performance of the clock, focusing on the standard measures of (1) frequency instability, and (2) systematic frequency uncertainty. Finally, we introduce new innovations for improving the accuracy of the <sup>88</sup>Sr lattice clock, including methods of "modified hyper-Ramsey" and multi-photon spectroscopy of the clock transition.</p>
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spelling oxford-uuid:d52faaaf-307c-4b48-847f-be590f46136f2022-03-27T08:24:09ZAn optical lattice clock with neutral strontiumThesishttp://purl.org/coar/resource_type/c_db06uuid:d52faaaf-307c-4b48-847f-be590f46136fORA Deposit2016Hobson, RGill, PBaird, P<p>Strontium optical lattice clocks can measure the passage of time with extraordinary precision. Capitalising on this precision, we can anticipate the deployment of lattice clocks to search for new physics beyond the standard model, to build new technologies for geodesy and navigation, and potentially to underpin a future redenition of the SI second.</p> <p>This thesis reports on the construction and evaluation of a robust Sr optical lattice clock at NPL. We describe the apparatus needed to capture, cool, and load samples of neutral strontium atoms into a magic-wavelength, far off-resonant lattice trap at 813 nm. We provide details of our optical local oscillator - the "clock laser" - and how it is used to realise an Sr-referenced optical frequency standard. We rigorously characterise the various contributing factors which limit the performance of the clock, focusing on the standard measures of (1) frequency instability, and (2) systematic frequency uncertainty. Finally, we introduce new innovations for improving the accuracy of the <sup>88</sup>Sr lattice clock, including methods of "modified hyper-Ramsey" and multi-photon spectroscopy of the clock transition.</p>
spellingShingle Hobson, R
An optical lattice clock with neutral strontium
title An optical lattice clock with neutral strontium
title_full An optical lattice clock with neutral strontium
title_fullStr An optical lattice clock with neutral strontium
title_full_unstemmed An optical lattice clock with neutral strontium
title_short An optical lattice clock with neutral strontium
title_sort optical lattice clock with neutral strontium
work_keys_str_mv AT hobsonr anopticallatticeclockwithneutralstrontium
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