Microfabricated surface ion trap on a high-finesse optical mirror

A novel approach to optics integration in ion traps is demonstrated based on a surface electrode ion trap that is microfabricated on top of a dielectric mirror. Additional optical losses due to fabrication are found to be as low as 80 ppm for light at 422 nm . The integrated mirror is used to demons...

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Main Authors: Herskind, Peter F., Shi, Molu, Ge, Yufei, Cetina, Marko, Chuang, Isaac L., Wang, Shannon X.
Other Authors: Massachusetts Institute of Technology. Department of Physics
Format: Article
Language:en_US
Published: Optical Society of America 2012
Online Access:http://hdl.handle.net/1721.1/72117
https://orcid.org/0000-0001-7296-523X
https://orcid.org/0000-0001-8586-4999
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author Herskind, Peter F.
Shi, Molu
Ge, Yufei
Cetina, Marko
Chuang, Isaac L.
Wang, Shannon X.
author2 Massachusetts Institute of Technology. Department of Physics
author_facet Massachusetts Institute of Technology. Department of Physics
Herskind, Peter F.
Shi, Molu
Ge, Yufei
Cetina, Marko
Chuang, Isaac L.
Wang, Shannon X.
author_sort Herskind, Peter F.
collection MIT
description A novel approach to optics integration in ion traps is demonstrated based on a surface electrode ion trap that is microfabricated on top of a dielectric mirror. Additional optical losses due to fabrication are found to be as low as 80 ppm for light at 422 nm . The integrated mirror is used to demonstrate light collection from, and imaging of, a single [superscript 88]Sr[superscript +] ion trapped 169±4 μm above the mirror.
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spelling mit-1721.1/721172022-09-28T18:55:40Z Microfabricated surface ion trap on a high-finesse optical mirror Herskind, Peter F. Shi, Molu Ge, Yufei Cetina, Marko Chuang, Isaac L. Wang, Shannon X. Massachusetts Institute of Technology. Department of Physics Massachusetts Institute of Technology. Research Laboratory of Electronics MIT-Harvard Center for Ultracold Atoms Chuang, Isaac Herskind, Peter F. Wang, Shannon Xuanyue Shi, Molu Ge, Yufei Cetina, Marko Chuang, Isaac L. A novel approach to optics integration in ion traps is demonstrated based on a surface electrode ion trap that is microfabricated on top of a dielectric mirror. Additional optical losses due to fabrication are found to be as low as 80 ppm for light at 422 nm . The integrated mirror is used to demonstrate light collection from, and imaging of, a single [superscript 88]Sr[superscript +] ion trapped 169±4 μm above the mirror. National Science Foundation (U.S.). Center for Ultracold Atoms United States. Army Research Office. Comprehensive Materials and Morphologies Study of Ion Traps Carlsberg Foundation Lundbeck Foundation 2012-08-14T15:42:54Z 2012-08-14T15:42:54Z 2011-08 2011-07 Article http://purl.org/eprint/type/JournalArticle 0146-9592 1539-4794 http://hdl.handle.net/1721.1/72117 Herskind, Peter F. et al. “Microfabricated Surface Ion Trap on a High-finesse Optical Mirror.” Optics Letters 36.16 (2011): 3045. © 2011 Optical Society of America https://orcid.org/0000-0001-7296-523X https://orcid.org/0000-0001-8586-4999 en_US http://dx.doi.org/10.1364/OL.36.003045 Optics Letters Article is made available in accordance with the publisher's policy and may be subject to US copyright law. Please refer to the publisher's site for terms of use. application/pdf Optical Society of America MIT web domain
spellingShingle Herskind, Peter F.
Shi, Molu
Ge, Yufei
Cetina, Marko
Chuang, Isaac L.
Wang, Shannon X.
Microfabricated surface ion trap on a high-finesse optical mirror
title Microfabricated surface ion trap on a high-finesse optical mirror
title_full Microfabricated surface ion trap on a high-finesse optical mirror
title_fullStr Microfabricated surface ion trap on a high-finesse optical mirror
title_full_unstemmed Microfabricated surface ion trap on a high-finesse optical mirror
title_short Microfabricated surface ion trap on a high-finesse optical mirror
title_sort microfabricated surface ion trap on a high finesse optical mirror
url http://hdl.handle.net/1721.1/72117
https://orcid.org/0000-0001-7296-523X
https://orcid.org/0000-0001-8586-4999
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