English

Continuous-wave virtual-state lasing from cold ytterbium atoms

Quantum Physics 2019-01-23 v3 Atomic Physics Optics

Abstract

While conventional lasers are based on gain media with three or four real levels, unconventional lasers including virtual levels and two-photon processes offer new opportunities. We study lasing that involves a two-photon process through a virtual lower level, which we realize in a cloud of cold ytterbium atoms that are magneto-optically trapped inside a cavity. We pump the atoms on the narrow 1^1S0_0 \to 3^3P1_1 line and generate laser emission on the same transition. Lasing is verified by a threshold behavior of output power vs.\ pump power and atom number, a flat g(2)g^{(2)} correlation function above threshold, and the polarization properties of the output. In the proposed lasing mechanism the MOT beams create the virtual lower level of the lasing transition. The laser process runs continuously, needs no further repumping, and might be adapted to other atoms or transitions such as the ultra narrow 1^1S0_0 \to 3^3P0_0 clock transition in ytterbium.

Keywords

Cite

@article{arxiv.1711.08707,
  title  = {Continuous-wave virtual-state lasing from cold ytterbium atoms},
  author = {Hannes Gothe and Dmitriy Sholokhov and Anna Breunig and Martin Steinel and Jürgen Eschner},
  journal= {arXiv preprint arXiv:1711.08707},
  year   = {2019}
}

Comments

v2: minor corrections, references added. v3: modifications to text, abstract, title; sub-figure added

R2 v1 2026-06-22T22:55:06.341Z