论文标题

在移动光晶格中S-和D波段状态叠置中超电原子的运输

Transport of ultracold atoms in superpositions of S- and D-band states in a moving optical lattice

论文作者

Yu, Zhongcheng, Tian, Jinyuan, Peng, Peng, Mao, Dekai, Chen, Xuzong, Zhou, Xiaoji

论文摘要

具有高可控性的移动光学晶格中的超电原子是研究运输现象的可行平台。在这里,我们在一维光学晶格中研究了D条带在D带上的超速原子的传输过程,并通过调节S频段和D频段的种群比例来执行原子转运的操纵。在实验中,我们首先使用快捷方式将超电原子加载到光学晶格中,然后通过扫描晶格束的相加速光学晶格。 D带和S频带中的原子传输分别被证明。我们发现,D频段中原子的组速度与S频段相反。通过将d谱带的掺杂原子掺入S频段,调节原子叠加态的群速度,并实现了原子群速度从正到阴性的操纵。此外,研究了晶格深度和加速度对传输距离的影响。具有多轨模拟的计算与实验结果一致。我们的工作提供了一种有用的方法来操纵高层或混合轨道的原子运输。

The ultracold atoms in a moving optical lattice with its high controllability is a feasible platform to research the transport phenomenon. Here, we study the transport process of ultracold atoms at the D band in a one-dimensional optical lattice, and perform the manipulation of atomic transport by modulating the population proportion of S band and D band. In the experiment, we first load ultracold atoms into the optical lattice using shortcut method, and then accelerate the optical lattice by scanning the phase of lattice beams. The atomic transport in D band and S band is demonstrated respectively. We find the group velocity of atoms in D band is opposite to that in S band. By doping atoms of D band into that of S band, group velocity of the atomic superposition state is modulated, and the manipulation of atomic group velocity from positive to negative is realized. Furthermore, the influence of lattice depth and acceleration on the transport distance are studied. The calculations with multi-orbital simulation are coincident with the experimental results. Our work provides a useful method to manipulate the atomic transport in higher or mixed orbits.

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