Electrostatic trapping of N molecules in high Rydberg states
arXiv:2403.12315 · doi:10.1103/PhysRevLett.132.113201
Abstract
N molecules traveling in pulsed supersonic beams have been excited from their ground electronic state to long-lived Rydberg states with principal quantum numbers between 39 and 48 using a resonance-enhanced two-color three-photon excitation scheme. The Rydberg states populated had static electric dipole moments exceeding D which allowed deceleration of the molecules to rest in the laboratory-fixed frame of reference and three-dimensional trapping using inhomogeneous electric fields. The trapped molecules were confined for up to 10 ms, with effective trap decay time constants increasing with principal quantum number, and ranging from 450s to 700 s. These observations, and comparison with the results of similar measurements with He atoms, indicate that the decay dynamics of the trapped Rydberg N molecules are dominated by spontaneous emission and do not exhibit significant contributions from effects of intramolecular interactions that lead to non-radiative decay.
6 pages, 4 figures
References in corpus (8)
- Benchmarking theory with an improved measurement of the ionization and dissociation energies of H
- Observation of enhanced rate coefficients in the H + H H + H reaction at low collision energies
- Tomography of Feshbach Resonance States
- Transmission-line decelerators for atoms in high Rydberg states
- Slow decay processes of electrostatically trapped Rydberg NO molecules
- Excitation and characterization of long-lived hydrogenic Rydberg states of nitric oxide
- Dynamics of a buffer-gas-loaded, deep optical trap for molecules
- Observation of quantum capture in an ion-molecule reaction