Dynamics of spin-momentum entanglement from superradiant phase transitions

0Citations
Citations of this article
8Readers
Mendeley users who have this article in their library.
Get full text

Abstract

Exploring operational regimes of many-body cavity QED with multilevel atoms remains an exciting research frontier for their enhanced storage capabilities of intralevel quantum correlations. In this work, we consider an experimentally feasible many-body cavity QED model describing a four-level system, where each of those levels is formed from a combination of different spin and momentum states of ultracold atoms in a cavity. The resulting model comprises a pair of Dicke Hamiltonians constructed from pseudospin operators, effectively capturing two intertwined superradiant phase transitions. The phase diagram reveals regions featuring weak and strong entangled states of spin and momentum atomic degrees of freedom. These states exhibit different dynamical responses, ranging from slow to fast relaxation, with the added option of persistent entanglement temporal oscillations. We discuss the role of cavity losses in steering the system's dynamics into such entangled states and propose a readout scheme that leverages different light polarizations within the cavity. Our work paves the way to connect the rich variety of non-equilibrium phase transitions that occur in many-body cavity QED to the buildup of quantum correlations in systems with multilevel atom descriptions.

Cite

CITATION STYLE

APA

Chelpanova, O., Seetharam, K., Rosa-Medina, R., Reiter, N., Finger, F., Donner, T., & Marino, J. (2024). Dynamics of spin-momentum entanglement from superradiant phase transitions. Physical Review Research, 6(3). https://doi.org/10.1103/PhysRevResearch.6.033193

Register to see more suggestions

Mendeley helps you to discover research relevant for your work.

Already have an account?

Save time finding and organizing research with Mendeley

Sign up for free