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Realization of uniform synthetic magnetic fields by periodically shaking an optical square lattice.

机译:通过周期性地摇晃光学方阵来实现均匀的合成磁场。

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摘要

Shaking a lattice system, by modulating the location of its sites periodically in time, is a powerful method to create effective magnetic fields in engineered quantum systems, such as cold gases trapped in optical lattices. However, such schemes are typically associated with space-dependent effective masses (tunneling amplitudes) and non-uniform flux patterns. In this work we investigate this phenomenon theoretically, by computing the effective Hamiltonians and quasienergy spectra associated with several kinds of lattice-shaking protocols. A detailed comparison with a method based on moving lattices, which are added on top of a main static optical lattice, is provided. This study allows the identification of novel shaking schemes, which simultaneously provide uniform effective mass and magnetic flux, with direct implications for cold-atom experiments and photonics.
机译:通过及时地周期性地调整其晶格位置,来摇动晶格系统是一种在工程量子系统中创建有效磁场(例如捕获在光学晶格中的冷气体)的有效方法。但是,这样的方案通常与空间相关的有效质量(隧穿振幅)和不均匀的通量模式相关。在这项工作中,我们通过计算与几种晶格抖动协议相关的有效哈密顿量和准能谱,从理论上研究了这一现象。提供了与基于移动晶格的方法的详细比较,该方法添加在主静态光学晶格的顶部。这项研究可以确定新颖的振动方案,该方案同时提供均匀的有效质量和磁通量,直接影响冷原子实验和光子学。

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