Long-lived circular Rydberg states of laser-cooled Rubidium atoms in a cryostat
arXiv:2002.02893 · doi:10.1103/PhysRevResearch.2.022032
Abstract
The exquisite properties of Rydberg levels make them particularly appealing for emerging quantum technologies. The lifetime of low-angular-momentum laser-accessible levels is however limited to a few by optical transitions and microwave blackbody radiation (BBR) induced transfers at room temperature. A considerable improvement would be obtained with the few lifetime of circular Rydberg levels in a cryogenic environment reducing the BBR temperature. We demonstrate the preparation of long-lived circular Rydberg levels of laser-cooled Rubidium atoms in a cryostat. We observe a lifetime for the circular level of principal quantum number . By monitoring the transfers between adjacent circular levels, we estimate in situ the microwave BBR temperature to be . The measured atomic coherence time () is limited here only by technical magnetic field fluctuations. This work opens interesting perspectives for quantum simulation and sensing with cold circular Rydberg atoms.
6 pages, 4 figures T. Cantat-Moltrecht and R. Cortiñas contributed equally to this work
References in corpus (5)
- Probing many-body dynamics on a 51-atom quantum simulator
- Many-Body Physics with Individually-Controlled Rydberg Atoms
- Quasiclassical calculations of BBR-induced depopulation rates and effective lifetimes of Rydberg nS, nP and nD alkali-metal atoms with n < 80
- Coherent many-body spin dynamics in a long-range interacting Ising chain
- Laser Trapping of Circular Rydberg Atoms
Cited by in corpus (24)
- Ultrafast energy exchange between two single Rydberg atoms on the nanosecond timescale
- Quantum logic and entanglement by neutral Rydberg atoms: methods and fidelity
- Rearrangement of single atoms in a 2000-site optical tweezers array at cryogenic temperatures
- Long-Lived Circular Rydberg Qubits of Alkaline-Earth Atoms in Optical Tweezers
- Preparation of Long-Lived, Non-Autoionizing Circular Rydberg States of Strontium
- Microscopic 3D printed optical tweezers for atomic quantum technology
- Synthetic dimension-induced conical intersections in Rydberg molecules
- Array of Individual Circular Rydberg Atoms Trapped in Optical Tweezers
- Observation of Blackbody Radiation Enhanced Superradiance in ultracold Rydberg Gases
- Millisecond-lived circular Rydberg atoms in a room-temperature experiment
- Trapped Rydberg ions: a new platform for quantum information processing
- Primary quantum thermometry of mm-wave blackbody radiation via induced state transfer in Rydberg states of cold atoms
- Spin-motion coupling in a circular Rydberg state quantum simulator: case of two atoms
- Indium tin oxide films meet circular Rydberg atoms: prospects for novel quantum simulation schemes
- Dissipation-induced antiferromagnetic-like frustration in coupled photonic resonators
- A high optical access cryogenic system for Rydberg atom arrays with a 3000-second trap lifetime
- Threading an atom with light
- Long-lived collective Rydberg excitations in atomic gas achieved via ac-Stark lattice modulation
- Blackbody Radiation Noise Broadening of Quantum Systems
- Tunable two-species spin models with Rydberg atoms in circular and elliptical states
- Extended Rydberg Lifetimes in a Cryogenic Atom Array
- Tailoring interaction ranges in atom arrays
- Non-destructive optical read-out and manipulation of circular Rydberg atoms
- Geometric phase in anisotropic Kepler problem: Perspective for realization in Rydberg atoms