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Micromotion minimization using Ramsey interferometry
We minimize the stray electric field in a linear Paul trap quickly and accurately, by applying interferometry pulse sequences to a trapped ion optical qubit. The interferometry sequences are sensitive to the change of ion equilibrium position when the trap stiffness is changed, and we use this to de...
Autores principales: | , , , , , |
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Lenguaje: | eng |
Publicado: |
2021
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Materias: | |
Acceso en línea: | https://dx.doi.org/10.1088/1367-2630/ac3db6 http://cds.cern.ch/record/2798402 |
_version_ | 1780972483053092864 |
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author | Higgins, Gerard Salim, Shalina Zhang, Chi Parke, Harry Pokorny, Fabian Hennrich, Markus |
author_facet | Higgins, Gerard Salim, Shalina Zhang, Chi Parke, Harry Pokorny, Fabian Hennrich, Markus |
author_sort | Higgins, Gerard |
collection | CERN |
description | We minimize the stray electric field in a linear Paul trap quickly and accurately, by applying interferometry pulse sequences to a trapped ion optical qubit. The interferometry sequences are sensitive to the change of ion equilibrium position when the trap stiffness is changed, and we use this to determine the stray electric field. The simplest pulse sequence is a two-pulse Ramsey sequence, and longer sequences with multiple pulses offer a higher precision. The methods allow the stray field strength to be minimized beyond state-of-the-art levels. Using a sequence of nine pulses we reduce the 2D stray field strength to (10.5 ± 0.8) mV m$^{−1}$ in 11 s measurement time. The pulse sequences are easy to implement and automate, and they are robust against laser detuning and pulse area errors. We use interferometry sequences with different lengths and precisions to measure the stray field with an uncertainty below the standard quantum limit. This marks a real-world case in which quantum metrology offers a significant enhancement. Also, we minimize micromotion in 2D using a single probe laser, by using an interferometry method together with the resolved sideband method; this is useful for experiments with restricted optical access. Furthermore, a technique presented in this work is related to quantum protocols for synchronizing clocks; we demonstrate these protocols here. |
id | cern-2798402 |
institution | Organización Europea para la Investigación Nuclear |
language | eng |
publishDate | 2021 |
record_format | invenio |
spelling | cern-27984022023-03-22T04:26:38Zdoi:10.1088/1367-2630/ac3db6doi:10.1088/1367-2630/ac3db6http://cds.cern.ch/record/2798402engHiggins, GerardSalim, ShalinaZhang, ChiParke, HarryPokorny, FabianHennrich, MarkusMicromotion minimization using Ramsey interferometryquant-phGeneral Theoretical PhysicsWe minimize the stray electric field in a linear Paul trap quickly and accurately, by applying interferometry pulse sequences to a trapped ion optical qubit. The interferometry sequences are sensitive to the change of ion equilibrium position when the trap stiffness is changed, and we use this to determine the stray electric field. The simplest pulse sequence is a two-pulse Ramsey sequence, and longer sequences with multiple pulses offer a higher precision. The methods allow the stray field strength to be minimized beyond state-of-the-art levels. Using a sequence of nine pulses we reduce the 2D stray field strength to (10.5 ± 0.8) mV m$^{−1}$ in 11 s measurement time. The pulse sequences are easy to implement and automate, and they are robust against laser detuning and pulse area errors. We use interferometry sequences with different lengths and precisions to measure the stray field with an uncertainty below the standard quantum limit. This marks a real-world case in which quantum metrology offers a significant enhancement. Also, we minimize micromotion in 2D using a single probe laser, by using an interferometry method together with the resolved sideband method; this is useful for experiments with restricted optical access. Furthermore, a technique presented in this work is related to quantum protocols for synchronizing clocks; we demonstrate these protocols here.We minimize the stray electric field in a linear Paul trap quickly and accurately, by applying interferometry pulse sequences to a trapped ion optical qubit. The interferometry sequences are sensitive to the change of ion equilibrium position when the trap stiffness is changed, and we use this to determine the stray electric field. The simplest pulse sequence is a two-pulse Ramsey sequence, and longer sequences with multiple pulses offer a higher precision. The methods allow the stray field strength to be minimized beyond state-of-the-art levels, with only modest experimental requirements. Using a sequence of nine pulses we reduce the 2D stray field strength to $(10.5\pm0.8)\,\mathrm{mV\,m^{-1}}$ in $11\,\mathrm{s}$ measurement time. The pulse sequences are easy to implement and automate, and they are robust against laser detuning and pulse area errors. We use interferometry sequences with different lengths and precisions to measure the stray field with an uncertainty below the standard quantum limit. This marks a real-world case in which quantum metrology offers a significant enhancement. Also, we minimize micromotion in 2D using a single probe laser, by using an interferometry method together with the resolved sideband method; this is useful for experiments with restricted optical access. Furthermore, a technique presented in this work is related to quantum protocols for synchronising clocks; we demonstrate these protocols here.arXiv:2107.01902oai:cds.cern.ch:27984022021-07-05 |
spellingShingle | quant-ph General Theoretical Physics Higgins, Gerard Salim, Shalina Zhang, Chi Parke, Harry Pokorny, Fabian Hennrich, Markus Micromotion minimization using Ramsey interferometry |
title | Micromotion minimization using Ramsey interferometry |
title_full | Micromotion minimization using Ramsey interferometry |
title_fullStr | Micromotion minimization using Ramsey interferometry |
title_full_unstemmed | Micromotion minimization using Ramsey interferometry |
title_short | Micromotion minimization using Ramsey interferometry |
title_sort | micromotion minimization using ramsey interferometry |
topic | quant-ph General Theoretical Physics |
url | https://dx.doi.org/10.1088/1367-2630/ac3db6 https://dx.doi.org/10.1088/1367-2630/ac3db6 http://cds.cern.ch/record/2798402 |
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