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Precision measurements on trapped antihydrogen in the ALPHA experiment

Both the 1S–2S transition and the ground state hyperfine spectrum have been observed in trapped antihydrogen. The former constitutes the first observation of resonant interaction of light with an anti-atom, and the latter is the first detailed measurement of a spectral feature in antihydrogen. Owing...

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Autor principal: Eriksson, S.
Lenguaje:eng
Publicado: 2018
Acceso en línea:https://dx.doi.org/10.1098/rsta.2017.0268
http://cds.cern.ch/record/2312593
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author Eriksson, S.
author_facet Eriksson, S.
author_sort Eriksson, S.
collection CERN
description Both the 1S–2S transition and the ground state hyperfine spectrum have been observed in trapped antihydrogen. The former constitutes the first observation of resonant interaction of light with an anti-atom, and the latter is the first detailed measurement of a spectral feature in antihydrogen. Owing to the narrow intrinsic linewidth of the 1S–2S transition and use of two-photon laser excitation, the transition energy can be precisely determined in both hydrogen and antihydrogen, allowing a direct comparison as a test of fundamental symmetry. The result is consistent with CPT invariance at a relative precision of around 2×10−10. This constitutes the most precise measurement of a property of antihydrogen. The hyperfine spectrum of antihydrogen is determined to a relative uncertainty of 4×10−4. The excited state and the hyperfine spectroscopy techniques currently both show sensitivity at the few 100 kHz level on the absolute scale. Here, the most recent work of the ALPHA collaboration on precision spectroscopy of antihydrogen is presented together with an outlook on improving the precision of measurements involving lasers and microwave radiation. Prospects of measuring the Lamb shift and determining the antiproton charge radius in trapped antihydrogen in the ALPHA apparatus are presented. Future perspectives of precision measurements of trapped antihydrogen in the ALPHA apparatus when the ELENA facility becomes available to experiments at CERN are discussed.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2018
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spelling cern-23125932021-05-03T20:10:34Zdoi:10.1098/rsta.2017.0268doi:10.1098/rsta.2017.0268http://cds.cern.ch/record/2312593engEriksson, S.Precision measurements on trapped antihydrogen in the ALPHA experimentBoth the 1S–2S transition and the ground state hyperfine spectrum have been observed in trapped antihydrogen. The former constitutes the first observation of resonant interaction of light with an anti-atom, and the latter is the first detailed measurement of a spectral feature in antihydrogen. Owing to the narrow intrinsic linewidth of the 1S–2S transition and use of two-photon laser excitation, the transition energy can be precisely determined in both hydrogen and antihydrogen, allowing a direct comparison as a test of fundamental symmetry. The result is consistent with CPT invariance at a relative precision of around 2×10−10. This constitutes the most precise measurement of a property of antihydrogen. The hyperfine spectrum of antihydrogen is determined to a relative uncertainty of 4×10−4. The excited state and the hyperfine spectroscopy techniques currently both show sensitivity at the few 100 kHz level on the absolute scale. Here, the most recent work of the ALPHA collaboration on precision spectroscopy of antihydrogen is presented together with an outlook on improving the precision of measurements involving lasers and microwave radiation. Prospects of measuring the Lamb shift and determining the antiproton charge radius in trapped antihydrogen in the ALPHA apparatus are presented. Future perspectives of precision measurements of trapped antihydrogen in the ALPHA apparatus when the ELENA facility becomes available to experiments at CERN are discussed.Both the 1S-2S transition and the ground state hyperfine spectrum have been observed in trapped antihydrogen. The former constitutes the first observation of resonant interaction of light with an anti-atom, and the latter is the first detailed measurement of a spectral feature in antihydrogen. Due to the narrow intrinsic linewidth of the 1S-2S transition and use of two-photon laser excitation, the transition energy can be precisely determined in both hydrogen and antihydrogen, allowing a direct comparison as a test of fundamental symmetry. The result is consistent with CPT invariance at a relative precision of around \num{2e-10}. This constitutes the most precise measurement of a property of antihydrogen. The hyperfine spectrum of antihydrogen is determined to a relative uncertainty of \num{4e-4}. The excited state and the hyperfine spectroscopy techniques currently both show sensitivity at the few \SI{100}{\kilo\hertz} level on the absolute scale. Here, the most recent work of the ALPHA collaboration on precision spectroscopy of antihydrogen is presented together with an outlook on improving the precision of measurements involving lasers and microwave radiation. Prospects of measuring the Lamb-shift and determining the antiproton charge radius in trapped antihydrogen in the ALPHA-apparatus are presented. Future perspectives of precision measurements of trapped antihydrogen in the ALPHA apparatus when the ELENA facility becomes available to experiments at CERN are discussed.arXiv:1803.10057oai:cds.cern.ch:23125932018-03-27
spellingShingle Eriksson, S.
Precision measurements on trapped antihydrogen in the ALPHA experiment
title Precision measurements on trapped antihydrogen in the ALPHA experiment
title_full Precision measurements on trapped antihydrogen in the ALPHA experiment
title_fullStr Precision measurements on trapped antihydrogen in the ALPHA experiment
title_full_unstemmed Precision measurements on trapped antihydrogen in the ALPHA experiment
title_short Precision measurements on trapped antihydrogen in the ALPHA experiment
title_sort precision measurements on trapped antihydrogen in the alpha experiment
url https://dx.doi.org/10.1098/rsta.2017.0268
https://dx.doi.org/10.1098/rsta.2017.0268
http://cds.cern.ch/record/2312593
work_keys_str_mv AT erikssons precisionmeasurementsontrappedantihydrogeninthealphaexperiment