Observation of photoassociation resonances in ultracold atom-molecule collisions
arXiv:2307.15917 · doi:10.1103/PhysRevLett.132.093403
Abstract
Photoassociation of ultracold atoms is a resonant light-assisted collision process, in which two colliding atoms absorb a photon and form an excited molecule. Since the first observation about three decades ago, the photoassociation of ultracold atoms has made a significant impact on the study of ultracold atoms and molecules. Extending the photoassociation of atoms to the photoassociation of atom-molecule pairs or molecule-molecule pairs will offer many new opportunities in the study of precision polyatomic molecular spectroscopy, formation of ultracold polyatomic molecules, and quantum control of molecular collisions and reactions. However, the high density of states and the photoexcitation of the collision complex by the trapping laser make photoassociation into well-defined quantum states of polyatomic molecules extremely difficult. Here we report on the observation of photoassociation resonances in ultracold collisions between NaK molecules and K atoms. We perform photoassociation in a long-wavelength optical dipole trap to form deeply bound triatomic molecules in the electronically excited states. The atom-molecule Feshbach resonance is used to enhance the free-bound Franck-Condon overlap. The photoassociation into well-defined quantum states of excited triatomic molecules is identified by observing resonantly enhanced loss features. These loss features depend on the polarization of the photoassociation lasers, allowing us to assign the rotational quantum numbers. The observation of ultracold atom-molecule photoassociation resonances paves the way toward preparing ground-state triatomic molecules, provides a new high-resolution spectroscopy technique for polyatomic molecules, and is also important to atom-molecule Feshbach resonances.
8 pages, 4 figures
References in corpus (18)
- A High Phase-Space-Density Gas of Polar Molecules
- Ultracold dense samples of dipolar RbCs molecules in the rovibrational and hyperfine ground state
- Ultracold Dipolar Gas of Fermionic NaK Molecules in their Absolute Ground State
- Creation of ultracold RbCs molecules in the rovibrational ground state
- Reactions of ultracold alkali metal dimers
- Sisyphus Cooling of Electrically Trapped Polyatomic Molecules
- Evaporation of microwave-shielded polar molecules to quantum degeneracy
- Radio Frequency Association of Efimov Trimers
- Giant formation rates of ultracold molecules via Feshbach Optimized Photoassociation
- Photoassociation of a Bose-Einstein Condensate near a Feshbach Resonance
- Control of reactive collisions by quantum interference
- Realizing unconventional quantum magnetism with symmetric top molecules
- Ultracold Gas of Dipolar NaCs Ground State Molecules
- Magnetic Feshbach resonances in collisions of NaK with K
- Resonant control of elastic collisions between NaK molecules and K atoms
- Preparation of a quantum degenerate mixture of NaK molecules and K atoms
- Towards photoassociation processes of ultracold rubidium trimers
- Triatomic Photoassociation in an Ultracold Atom-Molecule Collision
Cited by in corpus (7)
- Diatomic molecules of alkali-metal and alkaline-earth-metal atoms: interaction potentials, dipole moments, and polarizabilities
- Broad Feshbach resonance with a large background scattering length in a fermionic atom-molecule mixture
- Atom-Molecule Superradiance and Entanglement with Cavity-Mediated Three-Body Interactions
- Non-resonant inter-species interaction and its effect on the position response function of cold atoms
- Stabilization of three-body resonances to bound states in a continuum
- Optical formation of ultracold NaK ground state molecules
- Formation of ultracold triatomic molecules by electric microwave association