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Direct high-precision measurement of the magnetic moment of the proton

The spin-magnetic moment of the proton $\mu_p$ is a fundamental property of this particle. So far $\mu_p$ has only been measured indirectly, analysing the spectrum of an atomic hydrogen maser in a magnetic field. Here, we report the direct high-precision measurement of the magnetic moment of a singl...

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Detalles Bibliográficos
Autores principales: Mooser, A., Ulmer, S., Blaum, K., Franke, K., Kracke, H., Leiteritz, C., Quint, W, Rodegheri, C.C., Smorra, C., Walz, J.
Lenguaje:eng
Publicado: 2014
Materias:
Acceso en línea:https://dx.doi.org/10.1038/nature13388
http://cds.cern.ch/record/1710728
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author Mooser, A.
Ulmer, S.
Blaum, K.
Franke, K.
Kracke, H.
Leiteritz, C.
Quint, W
Rodegheri, C.C.
Smorra, C.
Walz, J.
author_facet Mooser, A.
Ulmer, S.
Blaum, K.
Franke, K.
Kracke, H.
Leiteritz, C.
Quint, W
Rodegheri, C.C.
Smorra, C.
Walz, J.
author_sort Mooser, A.
collection CERN
description The spin-magnetic moment of the proton $\mu_p$ is a fundamental property of this particle. So far $\mu_p$ has only been measured indirectly, analysing the spectrum of an atomic hydrogen maser in a magnetic field. Here, we report the direct high-precision measurement of the magnetic moment of a single proton using the double Penning-trap technique. We drive proton-spin quantum jumps by a magnetic radio-frequency field in a Penning trap with a homogeneous magnetic field. The induced spin-transitions are detected in a second trap with a strong superimposed magnetic inhomogeneity. This enables the measurement of the spin-flip probability as a function of the drive frequency. In each measurement the proton's cyclotron frequency is used to determine the magnetic field of the trap. From the normalized resonance curve, we extract the particle's magnetic moment in units of the nuclear magneton $\mu_p=2.792847350(9)\mu_N$. This measurement outperforms previous Penning trap measurements in terms of precision by a factor of about 760. It improves the precision of the forty year old indirect measurement, in which significant theoretical bound state corrections were required to obtain $\mu_p$, by a factor of 3. By application of this method to the antiproton magnetic moment $\mu_{\bar{p}}$ the fractional precision of the recently reported value can be improved by a factor of at least 1000. Combined with the present result, this will provide a stringent test of matter/antimatter symmetry with baryons.
id cern-1710728
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2014
record_format invenio
spelling cern-17107282022-03-09T03:29:46Zdoi:10.1038/nature13388http://cds.cern.ch/record/1710728engMooser, A.Ulmer, S.Blaum, K.Franke, K.Kracke, H.Leiteritz, C.Quint, WRodegheri, C.C.Smorra, C.Walz, J.Direct high-precision measurement of the magnetic moment of the protonphysics.atom-phThe spin-magnetic moment of the proton $\mu_p$ is a fundamental property of this particle. So far $\mu_p$ has only been measured indirectly, analysing the spectrum of an atomic hydrogen maser in a magnetic field. Here, we report the direct high-precision measurement of the magnetic moment of a single proton using the double Penning-trap technique. We drive proton-spin quantum jumps by a magnetic radio-frequency field in a Penning trap with a homogeneous magnetic field. The induced spin-transitions are detected in a second trap with a strong superimposed magnetic inhomogeneity. This enables the measurement of the spin-flip probability as a function of the drive frequency. In each measurement the proton's cyclotron frequency is used to determine the magnetic field of the trap. From the normalized resonance curve, we extract the particle's magnetic moment in units of the nuclear magneton $\mu_p=2.792847350(9)\mu_N$. This measurement outperforms previous Penning trap measurements in terms of precision by a factor of about 760. It improves the precision of the forty year old indirect measurement, in which significant theoretical bound state corrections were required to obtain $\mu_p$, by a factor of 3. By application of this method to the antiproton magnetic moment $\mu_{\bar{p}}$ the fractional precision of the recently reported value can be improved by a factor of at least 1000. Combined with the present result, this will provide a stringent test of matter/antimatter symmetry with baryons.The spin-magnetic moment of the proton $\mu_p$ is a fundamental property of this particle. So far $\mu_p$ has only been measured indirectly, analysing the spectrum of an atomic hydrogen maser in a magnetic field. Here, we report the direct high-precision measurement of the magnetic moment of a single proton using the double Penning-trap technique. We drive proton-spin quantum jumps by a magnetic radio-frequency field in a Penning trap with a homogeneous magnetic field. The induced spin-transitions are detected in a second trap with a strong superimposed magnetic inhomogeneity. This enables the measurement of the spin-flip probability as a function of the drive frequency. In each measurement the proton's cyclotron frequency is used to determine the magnetic field of the trap. From the normalized resonance curve, we extract the particle's magnetic moment in units of the nuclear magneton $\mu_p=2.792847350(9)\mu_N$. This measurement outperforms previous Penning trap measurements in terms of precision by a factor of about 760. It improves the precision of the forty year old indirect measurement, in which significant theoretical bound state corrections were required to obtain $\mu_p$, by a factor of 3. By application of this method to the antiproton magnetic moment $\mu_{\bar{p}}$ the fractional precision of the recently reported value can be improved by a factor of at least 1000. Combined with the present result, this will provide a stringent test of matter/antimatter symmetry with baryons.arXiv:1406.4888oai:cds.cern.ch:17107282014-06-18
spellingShingle physics.atom-ph
Mooser, A.
Ulmer, S.
Blaum, K.
Franke, K.
Kracke, H.
Leiteritz, C.
Quint, W
Rodegheri, C.C.
Smorra, C.
Walz, J.
Direct high-precision measurement of the magnetic moment of the proton
title Direct high-precision measurement of the magnetic moment of the proton
title_full Direct high-precision measurement of the magnetic moment of the proton
title_fullStr Direct high-precision measurement of the magnetic moment of the proton
title_full_unstemmed Direct high-precision measurement of the magnetic moment of the proton
title_short Direct high-precision measurement of the magnetic moment of the proton
title_sort direct high-precision measurement of the magnetic moment of the proton
topic physics.atom-ph
url https://dx.doi.org/10.1038/nature13388
http://cds.cern.ch/record/1710728
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