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实现用于超冷原子的弗洛凯工程化护城河能带

Realization of a Floquet-Engineered Moat Band for Ultracold Atoms.

作者信息

Bracamontes C A, Maslek J, Porto J V

机构信息

Joint Quantum Institute, University of Maryland and National Institute of Standards and Technology, College Park, Maryland 20742, USA.

出版信息

Phys Rev Lett. 2022 May 27;128(21):213401. doi: 10.1103/PhysRevLett.128.213401.

Abstract

We experimentally engineer a moatlike dispersion in a system of weakly interacting bosons. By periodically modulating the amplitude of a checkerboard optical lattice, the two lowest isolated bands are hybridized such that the single particle energy displays a continuum of nearly degenerate minima that lie along a circle in reciprocal space. The moatlike structure is confirmed by observing a zero group velocity at nonzero quasimomentum and we directly observe the effect of the modified dispersion on the trajectory of the center of mass position of the condensate. We measure the lifetime of condensates loaded into different moat bands at different quasimomenta and compare to theoretical predictions based on a linear stability analysis of Bogoliubov excitations. We find that the condensate decay increases rapidly as the quasimomentum is decreased below the radius of the moat minimum, and argue that such dynamical instability is characteristic of moatlike dispersions, including spin-orbit coupled systems. The ground state of strongly interacting bosons in such degenerate energy landscapes is expected to be highly correlated, and our work represents a step toward realizing fractional quantum Hall-like states of bosons in an optical lattice.

摘要

我们通过实验在弱相互作用玻色子系统中构建了一种类似护城河的色散。通过周期性地调制棋盘状光学晶格的振幅,使两个最低的孤立能带发生杂化,从而使单粒子能量呈现出一系列沿倒易空间中的一个圆排列的近乎简并的极小值。通过在非零准动量处观察到零群速度,证实了这种类似护城河的结构,并且我们直接观察到了修正后的色散对凝聚态质心位置轨迹的影响。我们测量了在不同准动量下加载到不同护城河能带中的凝聚态的寿命,并与基于玻戈留波夫激发的线性稳定性分析的理论预测进行了比较。我们发现,当准动量降低到护城河极小值半径以下时,凝聚态的衰变迅速增加,并认为这种动力学不稳定性是类似护城河色散的特征,包括自旋轨道耦合系统。在这种简并能量景观中,强相互作用玻色子的基态预计具有高度相关性,我们的工作朝着在光学晶格中实现玻色子的分数量子霍尔样态迈出了一步。

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