Journal article
Precise positioning of an ion in an integrated Paul trap-cavity system using radiofrequency signals
- Abstract:
- We report a novel miniature Paul ion trap design with an integrated optical fibre cavity which can serve as a building block for a fibre-linked quantum network. In such cavity quantum electrodynamic set-ups, the optimal coupling of the ions to the cavity mode is of vital importance and this is achieved by moving the ion relative to the cavity mode. The trap presented herein features an endcap-style design complemented with extra electrodes on which additional radiofrequency voltages are applied to fully control the pseudopotential minimum in three dimensions. This method lifts the need to use three-dimensional translation stages for moving the fibre cavity with respect to the ion and achieves high integrability, mechanical rigidity and scalability. Not based on modifying the capacitive load of the trap, this method leads to precise control of the pseudopotential minimum allowing the ion to be moved with precisions limited only by the ion’s position spread. We demonstrate this by coupling the ion to the fibre cavity and probing the cavity mode profile.
- Publication status:
- Published
- Peer review status:
- Peer reviewed
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Access Document
- Files:
-
-
(Preview, Accepted manuscript, pdf, 1.8MB, Terms of use)
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- Publisher copy:
- 10.1080/09500340.2017.1406158
Authors
- Publisher:
- Taylor and Francis
- Journal:
- Journal of Modern Optics More from this journal
- Volume:
- 65
- Issue:
- 5-6
- Publication date:
- 2017-12-06
- Acceptance date:
- 2017-11-02
- DOI:
- EISSN:
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1362-3044
- ISSN:
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0950-0340
- Language:
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English
- Keywords:
- Pubs id:
-
pubs:952191
- UUID:
-
uuid:69d95fe5-3909-41f1-92bb-93d33af48fc1
- Local pid:
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pubs:952191
- Source identifiers:
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952191
- Deposit date:
-
2019-01-14
Terms of use
- Copyright holder:
- Informa UK Limited
- Copyright date:
- 2017
- Notes:
- © 2017 Informa UK Limited, trading as Taylor & Francis Group. This is the accepted manuscript version of the article. The final version is available online from Taylor & Francis at: https://doi.org/10.1080/09500340.2017.1406158
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