Spin-motion coupling in a circular Rydberg state quantum simulator: case of two atoms
Paul M\'ehaignerie, Cl\'ement Sayrin, Jean-Michel Raimond, Michel, Brune, Guillaume Roux

TL;DR
This paper investigates the coupling between spin and motional dynamics in a proposed quantum simulator using circular Rydberg atoms, revealing regimes of entanglement, thermometry, and negligible motion influence on spin behavior.
Contribution
It provides an exact solution for two interacting circular Rydberg atoms' coupled spin-motion dynamics and explores practical regimes for quantum simulation applications.
Findings
Atomic and spin states can become fully entangled.
Spin dynamics are sensitive to initial temperature, enabling thermometry.
Motion can be negligible in certain parameter regimes.
Abstract
Rydberg atoms are remarkable tools for the quantum simulation of spin arrays. Circular Rydberg atoms open the way to simulations over very long time scales, using a combination of laser trapping of the atoms and spontaneous-emission inhibition, as shown in the proposal of a XXZ spin-array simulator based on chains of trapped circular atoms [T.L. Nguyen , Phys. Rev. X 8, 011032 (2018)]. Such simulators could reach regimes (thermalization, glassy dynamics) that are out of the reach of those based on ordinary, low-angular-momentum short-lived Rydberg atoms. Over the promised long time scales, the unavoidable coupling of the spin dynamics with the atomic motion in the traps may play an important role. We study here the interplay between the spin exchange and motional dynamics in the simple case of two interacting circular Rydberg atoms confined in harmonic traps. The time…
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Taxonomy
TopicsCold Atom Physics and Bose-Einstein Condensates · Quantum Information and Cryptography
