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Long range dipole-dipole interaction in atomic vapors probed by double-quantum two-dimensional coherent spectroscopy

Atomic Physics 2019-09-26 v1

Abstract

Optical double-quantum two-dimensional coherent spectroscopy (2DCS) was implemented to probe interatomic dipole-dipole interactions in both potassium and rubidium atomic vapors. The dipole-dipole interaction was detected at densities of 4.81×1084.81 \times 10^8 cm3^{-3} and 8.40×1098.40 \times 10^9 cm3^{-3} for potassium and rubidium, respectively, corresponding to a mean interatomic separation of 15.8 μ\mum or 3.0×105a03.0\times 10^5a_0 for potassium and 6.1 μ\mum or 1.2×105a01.2\times 10^5a_0 for rubidium, where a0a_0 is the Bohr radius. We report the lowest atomic density at which dipole-dipole interactions are detected. The experimental results confirm the long range nature of the dipole-dipole interaction which is critical for understanding many-body physics in atoms/molecules. The long range interaction also has implications in atom-based applications involving many-body interactions. Additionally, we demonstrated that double-quantum 2DCS is sufficiently sensitive to probe dipole-dipole interaction at densities that can be achieved with cold atom in a magneto-optical trap, paving the way for double-quantum 2DCS studies of cold atoms and molecules. The method can also open a new avenue to study long-range interactions in solid states systems such as quantum dots and color centers in diamonds.

Keywords

Cite

@article{arxiv.1811.07963,
  title  = {Long range dipole-dipole interaction in atomic vapors probed by double-quantum two-dimensional coherent spectroscopy},
  author = {Shaogang Yu and Michael Titze and Yifu Zhu and Xiaojun Liu and Hebin Li},
  journal= {arXiv preprint arXiv:1811.07963},
  year   = {2019}
}

Comments

5 pages, 4 figures

R2 v1 2026-06-23T05:21:22.936Z