Probing resonant energy transfer in collisions of ammonia with Rydberg helium atoms by microwave spectroscopy
arXiv:1801.01390 · doi:10.1063/1.5011406
Abstract
We present the results of experiments demonstrating the spectroscopic detection of Förster resonance energy transfer from NH in the ground electronic state to helium atoms in 1ss\,S Rydberg levels, where and . For these values of the 1ss\,S1sp\,P transitions in helium lie close to resonance with the ground-state inversion transitions in NH, and can be tuned through resonance using electric fields of less than 10~V/cm. In the experiments, energy transfer was detected by direct state-selective electric field ionization of the S and P Rydberg levels, and by monitoring the population of the D levels following pulsed microwave transfer from the P levels. Detection by microwave spectroscopic methods represents a highly state selective, low-background approach to probing the collisional energy transfer process and the environment in which the atom-molecule interactions occur. The experimentally observed electric-field dependence of the resonant energy transfer process, probed both by direct electric field ionization and by microwave transfer, agrees well with the results of calculations preformed using a simple theoretical model of the energy transfer process. For measurements performed in zero electric field with atoms prepared in the 1s40s\,S level the transition from a regime in which a single energy transfer channel can be isolated for detection to one in which multiple collision channels begin to play a role has been identified as the NH density was increased.
10 pages, 8 figures
References in corpus (5)
- Observation of Quantum Effects in sub Kelvin Cold Reactions
- Coherent dipole-dipole coupling between two single atoms at a Förster resonance
- Observation of enhanced rate coefficients in the H + H H + H reaction at low collision energies
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Cited by in corpus (4)
- Rydberg-State-Resolved Resonant Energy Transfer in Cold Electric-Field-Controlled Intrabeam Collisions of NH with Rydberg He Atoms
- Rydberg state ionization dynamics and tunnel ionization rates in strong electric fields
- Confinement of high- and low-field-seeking Rydberg atoms using time-varying inhomogeneous electric fields
- Probing van der Waals interactions and detecting polar molecules by Förster resonance energy transfer with Rydberg atoms at temperatures below 100 mK