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Bloch-Zener oscillations in a tunable optical honeycomb lattice

机译:可调谐光学蜂窝晶格中的Bloch-zener振荡

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Ultracold gases in optical lattices have proved to be a flexible tool to simulate many different phenomena of solid state physics [1, 2]. Recently, optical lattices with complex geometries have been realized [3, 4, 5, 6, 7], paving the way to simulating more realistic systems. The honeycomb structure has recently become accessible in an optical lattice composed of mutually perpendicular laser beams. This lattice structure exhibits topological features in its band structure - the Dirac points. At these points, two energy bands intersect linearly and the particles behave as relativistic Dirac fermions. In optical lattices, Bloch oscillations [8] resolved both in time and in quasi-momentum space can be directly observed.We make use of such Bloch-Zener oscillations to probe the vanishing energy gap at the Dirac points as well as their position in the band structure. In small band gap regions, we observe Landau-Zener tunneling [7, 9] to the second band and the regions of maximum transfer can be identified with the position of the Dirac points.
机译:已经证明了光学晶格中的超薄气体是模拟固态物理学的许多不同现象的柔性工具[1,2]。最近,已经实现了复杂几何形状的光学格子[3,4,5,6,7],铺平了模拟更现实的系统的方式。蜂窝结构最近在由相互垂直的激光束组成的光学晶格中可以进入。该晶格结构在其带结构中呈现拓扑特征 - DIRAC点。在这些点处,两个能带线性相交,颗粒表现为相对论的DIRAC光环。在光学格子中,可以直接观察到在时间和在准动量空间中解决的BLOCH振荡[8]。我们利用这种BLOCH-齐纳振荡来探测DIRAC点处的消失能量间隙以及它们的位置乐队结构。在小带隙区域中,我们观察Landau - 齐纳隧道[7,9]到第二带,并且可以用狄拉氏点的位置识别最大转移区域。

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