Imaging-assisted single-photon Doppler-free laser spectroscopy and the ionization energy of metastable triplet helium
arXiv:2308.08329 · doi:10.1103/PhysRevLett.131.103001
Abstract
Skimmed supersonic beams provide intense, cold, collision-free samples of atoms and molecules are one of the most widely used tools in atomic and molecular laser spectroscopy. High-resolution optical spectra are typically recorded in a perpendicular arrangement of laser and supersonic beams to minimize Doppler broadening. Typical Doppler widths are nevertheless limited to tens of MHz by the residual transverse-velocity distribution in the gas-expansion cones. We present an imaging method to overcome this limitation which exploits the correlation between the positions of the atoms and molecules in the supersonic expansion and their transverse velocities - and thus their Doppler shifts. With the example of spectra of transitions to high Rydberg states of metastable triplet He, we demonstrate the suppression of the residual Doppler broadening and a reduction of the full linewidths at half maximum to only about 1 MHz in the UV. Using a retro-reflection arrangement for the laser beam and a cross-correlation method, we determine Doppler-free spectra without any signal loss from the selection, by imaging, of atoms within ultranarrow transverse-velocity classes. As an illustration, we determine the ionization energy of triplet metastable He and confirm the significant discrepancy between recent experimental (Clausen et al., Phys. Rev. Lett. 127 093001 (2021)) and high-level theoretical (Patkós et al., Phys. Rev. A 103 042809 (2021)) values of this quantity.
References in corpus (5)
- Doppler-free Fourier transform spectroscopy
- Complete Lamb shift of helium triplet states
- SI-traceable frequency dissemination at 1572.06 nm in a stabilized fiber network with ring topology
- QED effects for triplet states of helium-like ions
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Cited by in corpus (5)
- Towards Precision Muonic X-Ray Measurements of Charge Radii of Light Nuclei
- Revised He nuclear charge radius due to electronic hyperfine mixing
- QED corrections to the correlated relativistic energy: one-photon processes
- One-particle operator representation over two-particle basis sets for relativistic QED computations
- Precision Spectroscopy of the Fine Structure in the and States of the Helium Dimer