Manipulating Rydberg atoms close to surfaces at cryogenic temperatures
arXiv:1402.7217 · doi:10.1103/PhysRevA.90.013414
Abstract
Helium atoms in Rydberg states have been manipulated coherently with microwave radiation pulses near a gold surface and near a superconducting NbTiN surface at a temperature of . The experiments were carried out with a skimmed supersonic beam of metastable helium atoms excited with laser radiation to Rydberg levels with principal quantum number between and . The separation between the cold surface and the center of the collimated beam is adjustable down to . Short-lived Rydberg levels were coherently transferred to the long-lived state to avoid radiative decay of the Rydberg atoms between the photoexcitation region and the region above the cold surfaces. Further coherent manipulation of the Rydberg levels with pulsed microwave radiation above the surfaces enabled measurements of stray electric fields and allowed us to study the decoherence of the atomic ensemble. Adsorption of residual gas onto the surfaces and the resulting slow build-up of stray fields was minimized by controlling the temperature of the surface and monitoring the partial pressures of HO, N, O and CO in the experimental chamber during the cool-down. Compensation of the stray electric fields to levels below was achieved over a region of along the beam-propagation direction which, for the beam velocity, implies the possibility to preserve the coherence of the atomic sample for several microseconds above the cold surfaces.
12 pages, 10 figures
References in corpus (8)
- Dipole blockade in a cold Rydberg atomic sample
- Reversible state transfer between superconducting qubits and atomic ensembles
- Spatially Resolved Excitation of Rydberg Atoms and Surface Effects on an Atom Chip
- Quantum information processing with single photons and atomic ensembles in microwave coplanar waveguide resonators
- Measuring Electric Fields From Surface Contaminants with Neutral Atoms
- Detrimental adsorbate fields in experiments with cold Rydberg gases near surfaces
- Electric field sensing near the surface microstructure of an atom chip using cold Rydberg atoms
- Rydberg atoms with a reduced sensitivity to dc and low-frequency electric fields
Cited by in corpus (28)
- Quantum computing with atomic qubits and Rydberg interactions: Progress and challenges
- Perspectives on quantum transduction
- Roadmap on Atomtronics: State of the art and perspective
- Rydberg-Stark deceleration of atoms and molecules
- Electric field cancellation on quartz: a Rb adsorbate induced negative electron affinity surface
- Coupling Rydberg atoms to microwave fields in a superconducting coplanar waveguide resonator
- Imaging electric fields in the vicinity of cryogenic surfaces using Rydberg atoms
- Reducing the sensitivity of Rydberg atoms to dc electric fields using two-frequency ac field dressing
- Transmission-line decelerators for atoms in high Rydberg states
- Radiative and collisional processes in translationally cold samples of hydrogen Rydberg atoms studied in an electrostatic trap
- Electrostatic trapping and in situ detection of Rydberg atoms above chip-based transmission lines
- Preparation of circular Rydberg states in helium with using a modified version of the crossed-fields method
- Single-shot Non-destructive Detection of Rydberg Atom Ensembles by Transmission Measurement of a Microwave Cavity
- Measuring the dispersive frequency shift of a rectangular microwave cavity induced by an ensemble of Rydberg atoms
- Measuring the polarization of electromagnetic fields using Rabi-rate measurements with spatial resolution: experiment and theory
- Microwave spectroscopy of the fine structure of high Rydberg states in He
- Preparation of circular Rydberg states in helium using the crossed fields method
- Adsorbate dynamics on a silica-coated gold surface measured by Rydberg Stark spectroscopy
- Reduction of the dc electric field sensitivity of circular Rydberg states using non-resonant dressing fields
- Reducing Rydberg state dc polarizability by microwave dressing
- On-chip quantum tomography of mechanical nano-scale oscillators with guided Rydberg atoms
- A high optical access cryogenic system for Rydberg atom arrays with a 3000-second trap lifetime
- Van der Waals interaction potential between Rydberg atoms near surfaces
- Feedback control of persistent-current oscillation based on the atomic-clock technique
- Optically Tailored Trapping Geometries for Ultracold Atoms on a Type-II Superconducting Chip
- Threading an atom with light
- Magic trapping of a Rydberg ion with a diminished static polarizability
- The Stark effect in molecular Rydberg states: Calculation of Rydberg-Stark manifolds of H and D including fine and hyperfine structures