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Modeling the Effects of State-Mixing Interactions near Förster Resonance

POSTER

Abstract

State-mixing interactions can compromise the effectiveness of the Rydberg excitation blockade near Förster resonance.  Up to 50% of the detected Rydberg atoms can be found in dipole coupled product states within tens of ns of excitation.  We use state-selective field ionization spectroscopy to measure, on a shot-by-shot basis, the distribution of states populated during narrowband laser excitation of ultracold rubidium atoms.  Our method allows us to quantify both the number of additional excitations added by each mixing event, and the extent to which state-mixing “breaks” the blockade.  We use a Monte Carlo method to model the effect of experimental noise sources on our data.  We find good agreement with a three-body model for state-mixing, except near exact Förster resonance.

Publication: Milo Eder, Andrew Lesak, Abby Plone, Tomohisa Yoda, Michael Highman, Aaron Reinhard,<br>Physical Review Research 2, 023234 (2020)

Presenters

  • Tomohisa Yoda

    Kenyon College

Authors

  • Tomohisa Yoda

    Kenyon College

  • Milo Eder

    Kenyon College

  • Andrew Lesak

    Kenyon College

  • Abigail E Plone

    Kenyon College

  • Aaron Reinhard

    Kenyon College