Characteristics of a magneto-optical trap of molecules
arXiv:1706.07848 · doi:10.1088/1367-2630/aa8e52
Abstract
We present the properties of a magneto-optical trap (MOT) of CaF molecules. We study the process of loading the MOT from a decelerated buffer-gas-cooled beam, and how best to slow this molecular beam in order to capture the most molecules. We determine how the number of molecules, the photon scattering rate, the oscillation frequency, damping constant, temperature, cloud size and lifetime depend on the key parameters of the MOT, especially the intensity and detuning of the main cooling laser. We compare our results to analytical and numerical models, to the properties of standard atomic MOTs, and to MOTs of SrF molecules. We load up to molecules, and measure a maximum scattering rate of s per molecule, a maximum oscillation frequency of 100 Hz, a maximum damping constant of 500 s, and a minimum MOT rms radius of 1.5 mm. A minimum temperature of 730 K is obtained by ramping down the laser intensity to low values. The lifetime, typically about 100 ms, is consistent with a leak out of the cooling cycle with a branching ratio of about . The MOT has a capture velocity of about 11 m/s.
27 pages, 16 figures
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- Quantum control of molecules for fundamental physics
- Spectroscopy on the Transition of Buffer-Gas Cooled AlCl
- Anisotropic Polarizability of Ultracold Ground-state NaRb Molecules
- Cold CH radicals for laser cooling and trapping
- Optimizing Pulsed-Laser Ablation Production of AlCl Molecules for Laser Cooling