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Collisions of spin-polarized YO molecules for single partial waves

Justin J. Burau1,2, Kameron Mehling1,2, Matthew D. Frye3,4, Mengjie Chen1,2, Parul Aggarwal1,2, Jeremy M. Hutson3, and Jun Ye1,2,*

  • 1JILA, National Institute of Standards and Technology and the University of Colorado, Boulder, Colorado 80309-0440, USA
  • 2Department of Physics, University of Colorado, Boulder, Colorado 80309-0390, USA
  • 3Joint Quantum Centre (JQC) Durham - Newcastle, Department of Chemistry, Durham University, Durham DH1 3LE, United Kingdom
  • 4Faculty of Physics, University of Warsaw, Pasteura 5, 02-093 Warsaw, Poland

  • *Contact author: ye@jila.colorado.edu

Phys. Rev. A 110, L041306 – Published 31 October, 2024

DOI: https://doi.org/10.1103/PhysRevA.110.L041306

Abstract

Efficient sub-Doppler laser cooling and optical trapping of YO molecules offer new opportunities to study collisional dynamics in the quantum regime. Confined in a crossed optical dipole trap, we achieve the highest phase-space density of 2.5×10−5 for a bulk laser-cooled molecular sample. This sets the stage to study YO-YO collisions in the microkelvin temperature regime, and reveal state-dependent, single-partial-wave two-body collisional loss rates. We determine the partial-wave contributions to loss of specific rotational states (first excited N=1 and ground N=0) following two strategies. First, we measure the change of the collision rate in a spin mixture of N=1 by tuning the kinetic energy with respect to the p- and d-wave centrifugal barriers. Second, we compare loss rates between a spin mixture and a spin-polarized state in N=0. Using quantum defect theory with a partially absorbing boundary condition at short range, we show that the dependence on temperature for N=1 can be reproduced in the presence of a d-wave or f-wave resonance, and the dependence on a spin mixture for N=0 with a p-wave resonance.

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