Direct laser cooling of a symmetric top molecule

Author:

Mitra Debayan1ORCID,Vilas Nathaniel B.1ORCID,Hallas Christian1ORCID,Anderegg Loïc1ORCID,Augenbraun Benjamin L.1ORCID,Baum Louis1ORCID,Miller Calder1ORCID,Raval Shivam1ORCID,Doyle John M.1ORCID

Affiliation:

1. Department of Physics, Harvard University, Cambridge, MA 02138, USA, and Harvard-MIT Center for Ultracold Atoms, Cambridge, MA 02138, USA.

Abstract

Ultracold polyatomic molecules have potentially wide-ranging applications in quantum simulation and computation, particle physics, and quantum chemistry. For atoms and small molecules, direct laser cooling has proven to be a powerful tool for quantum science in the ultracold regime. However, the feasibility of laser-cooling larger, nonlinear polyatomic molecules has remained unknown because of their complex structure. We laser-cooled the symmetric top molecule calcium monomethoxide (CaOCH3), reducing the temperature of ~104 molecules from 22 ± 1 millikelvin to 1.8 ± 0.7 millikelvin in one dimension and state-selectively cooling two nuclear spin isomers. These results demonstrate that the use of proper ro-vibronic transitions enables laser cooling of nonlinear molecules, thereby opening a path to efficient cooling of chiral molecules and, eventually, optical tweezer arrays of complex polyatomic species.

Funder

NSF Office of the Director

Air Force Office of Scientific Research

Army Research Office

Publisher

American Association for the Advancement of Science (AAAS)

Subject

Multidisciplinary

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