Blackbody radiation shift for the S--P optical clock transition in zinc and cadmium atoms
arXiv:1906.07853 · doi:10.1088/1361-6455/ab4434
Abstract
Black-body radiation (BBR) shifts of clock transition in divalent atoms Cd and Zn are evaluated using accurate relativistic many-body techniques of atomic structure. Static polarizabilities of the clock levels and relevant electric-dipole matrix elements are computed. We also present a comparative overview of the BBR shifts in optical clocks based on neutral divalent atoms trapped in optical lattices.
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- Dipole-dipole polarizability of the cadmium state revisited
- Searching for New Fundamental Interactions via Isotopic Shifts in Molecular Lattice Clocks
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- Effective light-induced Hamiltonian for atoms with large nuclear spin
- Laser-cooling Cadmium Bosons and Fermions with Near Ultraviolet Triplet Excitations