de Léséleuc Sylvain, Barredo Daniel, Lienhard Vincent, Browaeys Antoine, Lahaye Thierry
Laboratoire Charles Fabry, UMR 8501, Institut d'Optique, CNRS, Univ Paris Sud 11, 2 Avenue Augustin Fresnel, 91127 Palaiseau cedex, France.
Phys Rev Lett. 2017 Aug 4;119(5):053202. doi: 10.1103/PhysRevLett.119.053202. Epub 2017 Aug 2.
We report on the local control of the transition frequency of a spin 1/2 encoded in two Rydberg levels of an individual atom by applying a state-selective light shift using an addressing beam. With this tool, we first study the spectrum of an elementary system of two spins, tuning it from a nonresonant to a resonant regime, where "bright" (super-radiant) and "dark" (subradiant) states emerge. We observe the collective enhancement of the microwave coupling to the bright state. We then show that after preparing an initial single spin excitation and letting it hop due to the spin-exchange interaction, we can freeze the dynamics at will with the addressing laser, while preserving the coherence of the system. In the context of quantum simulation, this scheme opens exciting prospects for engineering inhomogeneous XY spin Hamiltonians or preparing spin-imbalanced initial states.
我们报告了通过使用寻址光束施加状态选择性光频移,对单个原子的两个里德堡能级中编码的自旋1/2的跃迁频率进行局部控制。借助此工具,我们首先研究了两个自旋的基本系统的光谱,将其从非共振状态调谐到共振状态,此时会出现“亮”(超辐射)态和“暗”(亚辐射)态。我们观察到与亮态的微波耦合的集体增强。然后我们表明,在制备初始单自旋激发并使其由于自旋交换相互作用而跳跃之后,我们可以用寻址激光随意冻结动力学,同时保持系统的相干性。在量子模拟的背景下,该方案为工程化非均匀XY自旋哈密顿量或制备自旋不平衡的初始状态开辟了令人兴奋的前景。