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存在自旋轨道耦合时光学晶格和塞曼晶格中的布洛赫振荡

Bloch Oscillations in Optical and Zeeman Lattices in the Presence of Spin-Orbit Coupling.

作者信息

Kartashov Yaroslav V, Konotop Vladimir V, Zezyulin Dmitry A, Torner Lluis

机构信息

ICFO-Institut de Ciencies Fotoniques, The Barcelona Institute of Science and Technology, 08860 Castelldefels, Barcelona, Spain.

Institute of Spectroscopy, Russian Academy of Sciences, Troitsk, Moscow Region 142190, Russia.

出版信息

Phys Rev Lett. 2016 Nov 18;117(21):215301. doi: 10.1103/PhysRevLett.117.215301.

Abstract

We address Bloch oscillations of a spin-orbit coupled atom in periodic potentials of two types: optical and Zeeman lattices. We show that in optical lattices the spin-orbit coupling allows controlling the direction of atomic motion and may lead to complete suppression of the oscillations at specific values of the coupling strength. In Zeeman lattices the energy bands are found to cross each other at the boundaries of the Brillouin zone, resulting in period doubling of the oscillations. In all cases, the oscillations are accompanied by rotation of the pseudospin, with a dynamics that is determined by the strength of the spin-orbit coupling. The predicted effects are discussed also in terms of a Wannier-Stark ladder, which in optical lattices consist of two mutually shifted equidistant subladders.

摘要

我们研究了自旋轨道耦合原子在两种周期性势场中的布洛赫振荡

光学晶格和塞曼晶格。我们表明,在光学晶格中,自旋轨道耦合允许控制原子运动方向,并可能在特定耦合强度值下导致振荡完全抑制。在塞曼晶格中,发现能带在布里渊区边界处相互交叉,导致振荡周期加倍。在所有情况下,振荡都伴随着赝自旋的旋转,其动力学由自旋轨道耦合强度决定。还根据万尼尔-斯塔克阶梯讨论了预测的效应,在光学晶格中,万尼尔-斯塔克阶梯由两个相互错开的等距子阶梯组成。

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