Optical coherent manipulation of alkaline-earth circular Rydberg states
arXiv:2111.14504 · doi:10.1038/s41567-022-01519-w
Abstract
Rydberg atoms are ideal tools for quantum technologies. Due to their large size, their dipole-dipole interaction at micrometer-scale distances and their coupling to external fields are huge. Recent experiments vividly exhibit their interest for quantum simulation, in spite of limitations due to the relatively short lifetime of optically-accessible Rydberg levels. These limitations motivate a renewed interest for the long-lived circular Rydberg states . However, detecting them is so far either destructive or complex. Moreover, alkali circular states can be manipulated only by microwave fields, unable to address individual atoms. Alkaline earth circular states, with their optically active second valence electron, can circumvent these problems. Here we show how to use the electrostatic coupling between the two valence electrons of strontium to coherently manipulate a circular Rydberg state with optical pulses. We also use this coupling to map the state of the Rydberg electron onto that of the ionic core. This experiment opens the way to a state-selective spatially-resolved non-destructive detection of the circular states and, beyond, to the realization of a hybrid optical-microwave platform for quantum technology.
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Cited by in corpus (12)
- Rydberg superatoms: An artificial quantum system for quantum information processing and quantum optics
- Long-Lived Circular Rydberg Qubits of Alkaline-Earth Atoms in Optical Tweezers
- Millisecond-lived circular Rydberg atoms in a room-temperature experiment
- Interacting Circular Rydberg Atoms Trapped in Optical Tweezers
- Isolated-core quadrupole excitation of highly excited autoionizing Rydberg states
- Threading an atom with light
- Long-lived collective Rydberg excitations in atomic gas achieved via ac-Stark lattice modulation
- Autoionization of high- core-excited Rydberg states of alkaline-earth-metal atoms
- Driving alkali Rydberg transitions with a phase-modulated optical lattice
- Quadrupole coupling of circular Rydberg qubits to inner shell excitations
- Tunable two-species spin models with Rydberg atoms in circular and elliptical states
- Two-photon cooling of calcium atoms