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Quantum Simulation
Spin Orbit and Hyperfine Simulations with Two-Species Ultracold Atoms in a Ring
arXiv
Authors: Allison Brattley, Tomáš Opatrný, Kunal K. Das
Year
2024
Paper ID
66947
Status
Preprint
Abstract Read
~2 min
Abstract Words
134
Citations
N/A
Abstract
A collective spin model is used to describe two species of mutually interacting ultracold bosonic atoms confined to a toroidal trap. The system is modeled by a Hamiltonian that can be split into two components, a linear part and a quadratic part, which may be controlled independently. We show the linear component is an analog of a Zeeman Hamiltonian, and the quadratic component presents a macroscopic simulator for spin-orbit and hyperfine interactions. We determine a complete set of commuting observables for both the linear and quadratic Hamiltonians, and derive analytical expressions for their respective spectra and density of states. We determine the conditions for generating maximal entanglement between the two species of atoms with a view to applications involving quantum correlations among spin degrees of freedom, such as in the area of quantum information.
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- This paper contributes to the Quantum Simulation research area in the Quantum Articles archive.
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- A collective spin model is used to describe two species of mutually interacting ultracold bosonic atoms confined to a toroidal trap.
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