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In-beam measurement of the hydrogen hyperfine splitting - towards antihydrogen spectroscopy
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abstract
Antihydrogen, the lightest atom consisting purely of antimatter, is an ideal laboratory to study the CPT symmetry by comparison to hydrogen. With respect to absolute precision, transitions within the ground-state hyperfine structure (GS-HFS) are most appealing by virtue of their small energy separation. ASACUSA proposed employing a beam of cold antihydrogen atoms in a Rabi-type experiment to determine the GS-HFS in a field-free region. Here we present a measurement of the zero-field hydrogen GS-HFS using the spectroscopy apparatus of ASACUSA's antihydrogen experiment. The measured value of $\nu_\mathrm{HF}$=$1~420~405~748.4(3.4)(1.6)~\textrm{Hz}$ with a relative precision of $\Delta$$\nu_\mathrm{HF}$/$\nu_\mathrm{HF}$=$2.7\times10^{-9}$ constitutes the most precise determination of this quantity in a beam and verifies the developed spectroscopy methods for the antihydrogen HFS experiment to the ppb level. Together with the recently presented observation of antihydrogen atoms $2.7~\textrm{m}$ downstream of the production region, the prerequisites for a measurement with antihydrogen are now available within the ASACUSA collaboration.
Forward citations
Cited by 2 Pith papers
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Hydrogen 21 cm Constraints on the Photon's Spin Scale
A continuous-spin photon would suppress the hydrogen 21cm transition rate by 1 minus rho squared alpha squared over 6 omega squared, which turns existing in-beam hyperfine data into the bound rho below 1 meV.
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Eliminating beam-induced depolarizing effects in the hydrogen jet target for high-precision proton beam polarimetry at the Electron-Ion Collider
A frequency-domain analysis of EIC beam harmonics shows that a 400 mT guide field is needed to keep the hydrogen jet target from depolarizing.
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