English

Engineering Quantum States of Matter for Atomic Clocks in Shallow Optical Lattices

Atomic Physics 2019-09-25 v2 Quantum Gases

Abstract

We investigate the effects of stimulated scattering of optical lattice photons on atomic coherence times in a state-of-the art 87Sr{}^{87}\mathrm{Sr} optical lattice clock. Such scattering processes are found to limit the achievable coherence times to less than 12 s (corresponding to a quality factor of 1×10161 \times 10^{16}), significantly shorter than the predicted 145(40) s lifetime of 87Sr{}^{87}\mathrm{Sr}'s excited clock state. We suggest that shallow, state-independent optical lattices with increased lattice constants can give rise to sufficiently small lattice photon scattering and motional dephasing rates as to enable coherence times on the order of the clock transition's natural lifetime. Not only should this scheme be compatible with the relatively high atomic density associated with Fermi-degenerate gases in three-dimensional optical lattices, but we anticipate that certain properties of various quantum states of matter can be used to suppress dephasing due to tunneling.

Keywords

Cite

@article{arxiv.1903.02498,
  title  = {Engineering Quantum States of Matter for Atomic Clocks in Shallow Optical Lattices},
  author = {Ross B. Hutson and Akihisa Goban and G. Edward Marti and Lindsay Sonderhouse and Christian Sanner and Jun Ye},
  journal= {arXiv preprint arXiv:1903.02498},
  year   = {2019}
}