Spin Entanglement and Magnetic Competition via Long-range Interactions in Spinor Quantum Optical Lattices

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Main Authors: Lozano-Méndez, Karen, Cásares, Alejandro H., Caballero-Benítez, Santiago F.
Format: Preprint
Published: 2020
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author Lozano-Méndez, Karen
Cásares, Alejandro H.
Caballero-Benítez, Santiago F.
author_facet Lozano-Méndez, Karen
Cásares, Alejandro H.
Caballero-Benítez, Santiago F.
contents Quantum matter at ultra-low temperatures offers a testbed for analyzing and controlling desired properties in strongly correlated systems. Under typical conditions the nature of the atoms fixes the magnetic character of the system. Beyond classical light potentials leading to optical lattices and short range interactions, high-Q cavities introduce novel dynamics into the system via the quantumness of light. Here we propose a theoretical model and we analyze it using exact diagonalization and density matrix renormalization group simulations. We explore the effects of cavity mediated long range magnetic interactions and optical lattices in ultracold matter. We find that global interactions modify the underlying magnetic character of the system while introducing competition scenarios. Antiferromagnetic correlated bosonic matter emerges in conditions beyond to what nature typically provides. These allow new alternatives toward the design of robust mechanisms for quantum information purposes, exploiting the properties of magnetic phases of strongly correlated quantum matter.
format Preprint
id arxiv_https___arxiv_org_abs_2011_07765
institution arXiv
publishDate 2020
record_format arxiv
spellingShingle Spin Entanglement and Magnetic Competition via Long-range Interactions in Spinor Quantum Optical Lattices
Lozano-Méndez, Karen
Cásares, Alejandro H.
Caballero-Benítez, Santiago F.
Quantum Gases
Other Condensed Matter
Atomic Physics
Optics
Quantum Physics
Quantum matter at ultra-low temperatures offers a testbed for analyzing and controlling desired properties in strongly correlated systems. Under typical conditions the nature of the atoms fixes the magnetic character of the system. Beyond classical light potentials leading to optical lattices and short range interactions, high-Q cavities introduce novel dynamics into the system via the quantumness of light. Here we propose a theoretical model and we analyze it using exact diagonalization and density matrix renormalization group simulations. We explore the effects of cavity mediated long range magnetic interactions and optical lattices in ultracold matter. We find that global interactions modify the underlying magnetic character of the system while introducing competition scenarios. Antiferromagnetic correlated bosonic matter emerges in conditions beyond to what nature typically provides. These allow new alternatives toward the design of robust mechanisms for quantum information purposes, exploiting the properties of magnetic phases of strongly correlated quantum matter.
title Spin Entanglement and Magnetic Competition via Long-range Interactions in Spinor Quantum Optical Lattices
topic Quantum Gases
Other Condensed Matter
Atomic Physics
Optics
Quantum Physics
url https://arxiv.org/abs/2011.07765