Collisions Between Ultracold Molecules and Atoms in a Magnetic Trap
arXiv:2101.01580 · doi:10.1103/PhysRevLett.126.153401
Abstract
We prepare mixtures of ultracold CaF molecules and Rb atoms in a magnetic trap and study their inelastic collisions. When the atoms are prepared in the spin-stretched state and the molecules in the spin-stretched component of the first rotationally excited state, they collide inelastically with a rate coefficient of cm/s at temperatures near 100~K. We attribute this to rotation-changing collisions. When the molecules are in the ground rotational state we see no inelastic loss and set an upper bound on the spin relaxation rate coefficient of cm/s with 95% confidence. We compare these measurements to the results of a single-channel loss model based on quantum defect theory. The comparison suggests a short-range loss parameter close to unity for rotationally excited molecules, but below 0.04 for molecules in the rotational ground state.
9 pages, 6 figures. Minor changes following review
References in corpus (12)
- A High Phase-Space-Density Gas of Polar Molecules
- Observation of Quantum Effects in sub Kelvin Cold Reactions
- Resonant collisional shielding of reactive molecules using electric fields
- Dipolar evaporation of reactive molecules to below the Fermi temperature
- Ultracold Rb-OH collisions and prospects for sympathetic cooling
- Laser cooling of molecules
- Cold N+NH Collisions in a Magnetic Trap
- Characteristics of a magneto-optical trap of molecules
- Large Effects of Electric Fields on Atom-Molecule Collisions at Millikelvin Temperatures
- Observation of orbiting resonances in He(3S1) + NH3 Penning ionization
- Controlling Spin-flips of Molecules in an Electromagnetic Trap
- Complexes formed in collisions between ultracold alkali-metal diatomic molecules and atoms
Cited by in corpus (26)
- Quantum state manipulation and cooling of ultracold molecules
- Laser cooled molecules
- Collisions of ultracold molecules in bright and dark optical dipole traps
- Self-bound dipolar droplets and supersolids in molecular Bose-Einstein condensates
- Control of reactive collisions by quantum interference
- Ultracold Sticky Collisions: Theoretical and Experimental Status
- High Phase-Space Density of Laser-Cooled Molecules in an Optical Lattice
- Quantum control of molecules for fundamental physics
- Polarization Enhanced Deep Optical Dipole Trapping of -cooled Polar Molecules
- Magnetic Feshbach resonances in collisions of NaK with K
- Optical Trapping of a Polyatomic Molecule in an -Type Parity Doublet State
- High density loading and collisional loss of laser cooled molecules in an optical trap
- Quantum spin state selectivity and magnetic tuning of ultracold chemical reactions of triplet alkali-metal dimers with alkali-metal atoms
- Ultracold molecules in the absolute ground state
- Hyperfine-to-rotational energy transfer in ultracold atom-molecule collisions
- Radiative Decay Rate and Branching Fractions of MgF
- Measurement of Rb-Rb van der Waals coefficient via Quantum Diffractive Universality
- Sympathetic cooling and slowing of molecules with Rydberg atoms
- Collisions in a dual-species magneto-optical trap of molecules and atoms
- Searching for axion forces with spin precession in atoms and molecules
- Magnetic Feshbach resonances in ultracold atom-molecule collisions
- Nuclear spin relaxation in cold atom-molecule collisions
- Ultracold molecular collisions in magnetic fields: Efficient incorporation of hyperfine structure in the total rotational angular momentum representation
- DiPolMol-Py: A Python package for calculations for ground-state molecules
- Molecule-molecule and atom-molecule collisions with ultracold RbCs molecules
- Strongly dipolar molecular Bose-Einstein condensates: From few- to many-body physics