English

Synthetic spin-orbit coupling in an optical lattice clock

Quantum Gases 2016-01-27 v1

Abstract

We propose the use of optical lattice clocks operated with fermionic alkaline-earth-atoms to study spin-orbit coupling (SOC) in interacting many-body systems. The SOC emerges naturally during the clock interrogation when atoms are allowed to tunnel and accumulate a phase set by the ratio of the "magic" lattice wavelength to the clock transition wavelength. We demonstrate how standard protocols such as Rabi and Ramsey spectroscopy, that take advantage of the sub-Hertz resolution of state-of-the-art clock lasers, can perform momentum-resolved band tomography and determine SOC-induced ss-wave collisions in nuclear spin polarized fermions. By adding a second counter-propagating clock beam a sliding superlattice can be implemented and used for controlled atom transport and as a probe of pp and ss-wave interactions. The proposed spectroscopic probes provide clean and well-resolved signatures at current clock operating temperatures.

Keywords

Cite

@article{arxiv.1509.05846,
  title  = {Synthetic spin-orbit coupling in an optical lattice clock},
  author = {Michael L. Wall and Andrew P. Koller and Shuming Li and Xibo Zhang and Nigel R. Cooper and Jun Ye and Ana Maria Rey},
  journal= {arXiv preprint arXiv:1509.05846},
  year   = {2016}
}

Comments

5.5 pages and 4 figures+6 pages and 1 figure supplemental material

R2 v1 2026-06-22T11:00:27.155Z