论文标题
超速rydberg兴奋的原子莫特绝缘子中的超快多体动力学
Ultrafast Many-Body Dynamics in an Ultracold Rydberg-Excited Atomic Mott Insulator
论文作者
论文摘要
我们报告了由Rydberg激发的空间订购的超低原子中超快非平衡多体电子动力学的观察和控制,该原子是由三维统一填充原子莫特绝缘子产生的。通过在Rydberg Atomic系统中实施时间域的Ramsey干涉测量法,我们观察到Picsecondscale Ultrafast多体动力学,这基本上是由光子效果中长距离相互作用之间多体相关的出现和演变所控制的。我们通过不同的理论方法分析了我们的观察结果,发现必须将量子波动包括在半古典描述之外,以描述观察到的动力学。我们的Rydberg Lattice平台结合了超快方法,可抵抗环境噪声,为通过长距离范德华的相互作用和共振偶极 - 偶极 - 偶极 - 偶极 - 偶极 - 偶极偶相互作用与合成超电压质量晶体中的电荷反射式策略进行了模拟的大门。
We report the observation and control of ultrafast non-equilibrium many-body electron dynamics in Rydberg-excited spatially-ordered ultracold atoms created from a three-dimensional unity-filling atomic Mott insulator. By implementing time-domain Ramsey interferometry with attosecond precision in our Rydberg atomic system, we observe picosecond-scale ultrafast many-body dynamics that is essentially governed by the emergence and evolution of many-body correlations between long-range interacting atoms in an optical lattice. We analyze our observations with different theoretical approaches and find that quantum fluctuations have to be included beyond semi-classical descriptions to describe the observed dynamics. Our Rydberg lattice platform combined with an ultrafast approach, which is robust against environmental noises, opens the door for simulating strongly-correlated electron dynamics by long-range van der Waals interaction and resonant dipole-dipole interaction to the charge-overlapping regime in synthetic ultracold atomic crystals.