Tune-out wavelengths of the hyperfine components of the ground level of Cs atoms
arXiv:2010.11005 · doi:10.1103/PhysRevA.102.042823
Abstract
The static and dynamic electric-dipole polarizabilities and tune-out wavelengths for the ground state of Cs atoms are calculated by using a semiempirical relativistic configuration interaction plus core polarization approach. By considering the hyperfine splittings, the static and dynamic polarizabilities, hyperfine Stark shifts, and tune-out wavelengths of the hyperfine components of the ground level of Cs atoms are determined. It is found that the hyperfine shifts of the first primary tune-out wavelengths are about 0.0135 nm and 0.0106 nm, which are very close to the hyperfine interaction energies. Additionally, the contribution of the tensor polarizability to the tune-out wavelengths is determined to be about nm.
11 pages, 2 figures. Accepted in Phys. Rev. A
References in corpus (8)
- Species-specific optical lattices
- High-accuracy calculation of black-body radiation shift in Cs primary frequency standard
- Precision Measurement of Transition Matrix Elements via Light Shift Cancellation
- Frequency shift of hyperfine transitions due to blackbody radiation
- Accurate determination of electric-dipole matrix elements in K and Rb from Stark shift measurements
- Precision lifetime measurement of the cesium level using ultrafast pump-probe laser pulses
- Measurement of the radial matrix elements for the transitions in cesium
- Electric dipole matrix elements for the transition in atomic cesium
Cited by in corpus (4)
- Measurement of the tune-out wavelength for Cs at nm
- Be optical lattice clocks with the fractional Stark shift up to the level of 10
- Dynamical generation of solitons in one-dimensional Fermi superfluids with and without spin-orbit coupling
- High-precision Electric Dipole Polarizabilities of the Clock States in Cs