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SO(3) "Nuclear Physics" with ultracold Gases

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arxiv 1802.00022 v1 pith:JCIEAKKM submitted 2018-01-31 cond-mat.quant-gas hep-lathep-thquant-ph

classification cond-mat.quant-gashep-lathep-thquant-ph
keywords gaugemodelquantumnuclearphysicslatticemagnetismoptical
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An ab initio calculation of nuclear physics from Quantum Chromodynamics (QCD), the fundamental SU(3) gauge theory of the strong interaction, remains an outstanding challenge. Here, we discuss the emergence of key elements of nuclear physics using an SO(3) lattice gauge theory as a toy model for QCD. We show that this model is accessible to state-of-the-art quantum simulation experiments with ultracold atoms in an optical lattice. First, we demonstrate that our model shares characteristic many-body features with QCD, such as the spontaneous breakdown of chiral symmetry, its restoration at finite baryon density, as well as the existence of few-body bound states. Then we show that in the one-dimensional case, the dynamics in the gauge invariant sector can be encoded as a spin S=3/2 Heisenberg model, i.e., as quantum magnetism, which has a natural realization with bosonic mixtures in optical lattices, and thus sheds light on the connection between non-Abelian gauge theories and quantum magnetism.

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Cited by 2 Pith papers

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    Hardcore-boson matter reproduces the fermionic U(1) quantum link model phase diagram in the confined regime, with extra boson-specific ordering near the transition.

  2. Towards analog quantum simulations of lattice gauge theories with trapped ions

    quant-ph 2019-08 conditional novelty 6.0 of 10

    A detailed trapped-ion protocol for analog quantum simulation of the Schwinger model and two other lattice gauge theories, with an optimization scheme to engineer the required spin-spin Hamiltonian.

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