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Probing Nonlocal Spatial Correlations in Quantum Gases with Ultra-long-range Rydberg Molecules

Atomic Physics 2019-07-31 v1 Quantum Gases

Abstract

We present photo-excitation of ultra-long-range Rydberg molecules as a probe of spatial correlations in quantum gases. Rydberg molecules can be created with well-defined internuclear spacing, set by the radius of the outer lobe of the Rydberg electron wavefunction RnR_n. By varying the principal quantum number nn of the target Rydberg state, the molecular excitation rate can be used to map the pair-correlation function of the trapped gas g(2)(Rn)g^{(2)}(R_n). We demonstrate this with ultracold Sr gases and probe pair-separation length scales ranging from Rn=14003200R_n = 1400 - 3200 a0a_0, which are on the order of the thermal de Broglie wavelength for temperatures around 1 μ\muK. We observe bunching for a single-component Bose gas of 84^{84}Sr and anti-bunching due to Pauli exclusion at short distances for a polarized Fermi gas of 87^{87}Sr, revealing the effects of quantum statistics.

Keywords

Cite

@article{arxiv.1903.11526,
  title  = {Probing Nonlocal Spatial Correlations in Quantum Gases with Ultra-long-range Rydberg Molecules},
  author = {J. D. Whalen and S. K. Kanungo and R. Ding and M. Wagner and R. Schmidt and H. R. Sadeghpour and S. Yoshida and J. Burgdörfer and F. B. Dunning and T. C. Killian},
  journal= {arXiv preprint arXiv:1903.11526},
  year   = {2019}
}

Comments

6 pages, 5 figures