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Coupling ultracold matter to dynamical gauge fields in optical lattices: From flux attachment to ℤ2 lattice gauge theories

机译:耦合超冷物质到光学晶格中的动态规范场:从通量附着到ℤ2晶格规范理论

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摘要

From the standard model of particle physics to strongly correlated electrons, various physical settings are formulated in terms of matter coupled to gauge fields. Quantum simulations based on ultracold atoms in optical lattices provide a promising avenue to study these complex systems and unravel the underlying many-body physics. Here, we demonstrate how quantized dynamical gauge fields can be created in mixtures of ultracold atoms in optical lattices, using a combination of coherent lattice modulation with strong interactions. Specifically, we propose implementation of ℤ2 lattice gauge theories coupled to matter, reminiscent of theories previously introduced in high-temperature superconductivity. We discuss a range of settings from zero-dimensional toy models to ladders featuring transitions in the gauge sector to extended two-dimensional systems. Mastering lattice gauge theories in optical lattices constitutes a new route toward the realization of strongly correlated systems, with properties dictated by an interplay of dynamical matter and gauge fields.
机译:从粒子物理学的标准模型到高度相关的电子,根据与规范场耦合的物质来制定各种物理设置。基于光学晶格中超冷原子的量子模拟为研究这些复杂系统并揭示潜在的多体物理学提供了一条有希望的途径。在这里,我们展示了如何使用相干晶格调制与强相互作用的组合,在光学晶格中的超冷原子混合物中创建量化的动态规范场。具体来说,我们提出了与物质耦合的ℤ2晶格规理论的实现,让人想起以前在高温超导中引入的理论。我们讨论了一系列设置,从零维玩具模型到具有量规扇区到扩展二维系统过渡功能的梯子。掌握光学晶格中的晶格规理论构成了实现强相关系统的一条新途径,其特性是由动态物质和标距场的相互作用决定的。

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