论文标题

抑制浮雕 - 哈伯德系统中的耗散

Suppressing dissipation in a Floquet-Hubbard system

论文作者

Viebahn, Konrad, Minguzzi, Joaquìn, Sandholzer, Kilian, Walter, Anne-Sophie, Görg, Frederik, Esslinger, Tilman

论文摘要

“ Floquet Engineering”的概念依赖于外部周期性的驱动器来实现新颖的,有效的静态汉密尔顿人。该技术正在跨物理学的实验平台中探索,包括超电原子,激光驱动的电子系统,核磁共振和被困的离子。 Floquet Engineering的主要挑战是避免从驱动器中不受控制的光子吸收,尤其是在激发频谱有效致密的相互作用系统中。在最近的实验和理论工作中,已经探索了与高较高模式的耗散耦合,例如光学晶格的激发带,但是缺乏一种广泛适用的方法来减轻这种效果的方法。在这里,我们展示了在驱动的光学晶格中应用于强相关的Fermions的两路量子干扰如何抑制耗散耦合到较高的频段,并增加了双占用率和自旋相关的寿命,并增加了两到三个数量级。通过以确定的相对相位的基本驾驶频率引入弱的第二个调制来实现干扰。该技术被证明可以抑制驱动的哈伯德系统的弱和强烈相互作用的制度中的耗散,从而为实现相互作用的浮雕系统中的物质低温阶段打开了途径。

The concept of `Floquet engineering' relies on an external periodic drive to realise novel, effectively static Hamiltonians. This technique is being explored in experimental platforms across physics, including ultracold atoms, laser-driven electron systems, nuclear magnetic resonance, and trapped ions. The key challenge in Floquet engineering is to avoid the uncontrolled absorption of photons from the drive, especially in interacting systems in which the excitation spectrum becomes effectively dense. The resulting dissipative coupling to higher-lying modes, such as the excited bands of an optical lattice, has been explored in recent experimental and theoretical works, but the demonstration of a broadly applicable method to mitigate this effect is lacking. Here, we show how two-path quantum interference, applied to strongly-correlated fermions in a driven optical lattice, suppresses dissipative coupling to higher bands and increases the lifetime of double occupancies and spin-correlations by two to three orders of magnitude. Interference is achieved by introducing a weak second modulation at twice the fundamental driving frequency with a definite relative phase. This technique is shown to suppress dissipation in both weakly and strongly interacting regimes of a driven Hubbard system, opening an avenue to realising low-temperature phases of matter in interacting Floquet systems.

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