控制原子定向运动和自旋轨道耦合原子在光学晶格中的二阶隧穿

Xiaobing Luo, Zhao-Yun Zeng, Yu Guo, Baiyuan Yang, Jinpeng Xiao, Lei Li, Chao Kong, Ai-xi Chen
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引用次数: 6

摘要

我们从理论上探讨了单自旋-轨道耦合原子在晶格振动和时间周期塞曼场作用下被困在光学晶格中的玻色-哈伯德模型的隧道动力学和动态局域化(DL)。通过解析和数值方法,我们证明了自旋-轨道耦合在多光子共振和远共振参数区都为DL现象增加了一些新的结果。当驱动频率与静态塞曼场共振(多光子共振)时,我们得到了一个意想不到的新DL现象,即单个so耦合原子被限制为完美的双点拉比振荡并伴有自旋翻转。通过使用非常规的DL现象,我们能够产生棘轮效应,使原子定向向不同方向运动,并伴随着在SO耦合作用下的周期性自旋翻转。对于远距共振情况,我们证明了通过单独抑制通常的位点间隧道效应,可以实现下近邻位点之间的一种自旋守恒的二阶隧道效应,这是传统晶格系统在没有SO耦合的情况下无法实现的。我们还表明,准能量平坦性(塌缩)和DL的存在需要同时控制通常的位点间隧穿和与so耦合相关的二阶隧穿。这些结果可能与基于自旋的量子信息处理和新型自旋电子学器件的设计等潜在应用有关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Controlling directed atomic motion and second-order tunneling of a spin-orbit-coupled atom in optical lattices
We theoretically explore the tunneling dynamics and dynamical localization (DL) for the Bose-Hubbard (BH) model of a single spin-orbit-coupled atom trapped in an optical lattice subjected to lattice shaking and to time-periodic Zeeman field. By means of analytical and numerical methods, we demonstrate that the spin-orbit (SO) coupling adds some new results to the DL phenomenon in both multiphoton resonance and far-off-resonance parameter regimes. When the driving frequency is resonant with the static Zeeman field (multi-photon resonances), we obtain an unexpected new DL phenomenon where the single SO-coupled atom is restricted to making perfect two-site Rabi oscillation accompanied by spin flipping. By using the unconventional DL phenomenon, we are able to generate a ratchetlike effect which enables directed atomic motion towards different directions and accompanies periodic spin-flipping under the action of SO coupling. For the far-off-resonance case, we show that by suppressing the usual inter-site tunneling alone, it is possible to realize a type of spin-conserving second-order tunneling between next-nearest-neighboring sites, which is not accessible in the conventional lattice system without SO coupling. We also show that simultaneous controls of the usual inter-site tunneling and the SO-coupling-related second-order-tunneling are necessary for quasienergies flatness (collapse) and DL to exist. These results may be relevant to potential applications such as spin-based quantum information processing and design of novel spintronics devices.
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