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Sisyphus Laser Cooling of a Polyatomic Molecule

Atomic Physics 2017-05-03 v1

Abstract

We perform magnetically-assisted Sisyphus laser cooling of the triatomic free radical strontium monohydroxide (SrOH). This is achieved with principal optical cycling in the rotationally closed P(N"=1)P\left(N"=1\right) branch of either the X~2Σ+(000)A~2Π1/2(000)\tilde{X}^{2}\Sigma^{+}\left(000\right)\leftrightarrow\tilde{A}^{2}\Pi_{1/2}\left(000\right) or the X~2Σ+(000)B~2Σ+(000)\tilde{X}^{2}\Sigma^{+}\left(000\right)\leftrightarrow\tilde{B}^{2}\Sigma^{+}\left(000\right) vibronic transitions. Molecules lost into the excited vibrational states during the cooling process are repumped back through the B~(000)\tilde{B}\left(000\right) state for both the (100)\left(100\right) level of the Sr-O stretching mode and the (0200)\left(02^{0}0\right) level of the bending mode. The transverse temperature of a SrOH molecular beam is reduced in one dimension by two orders of magnitude to 700 μK\sim700\ {\rm \mu K}. This approach opens a path towards creating a variety of ultracold polyatomic molecules, including much larger ones, by means of direct laser cooling.

Keywords

Cite

@article{arxiv.1609.02254,
  title  = {Sisyphus Laser Cooling of a Polyatomic Molecule},
  author = {Ivan Kozyryev and Louis Baum and Kyle Matsuda and Benjamin L. Augenbraun and Loic Anderegg and Alexander P. Sedlack and John M. Doyle},
  journal= {arXiv preprint arXiv:1609.02254},
  year   = {2017}
}
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