利用密度分布的交叉相关性表征时控无序实现中的量子气体

Silvia Hiebel, Benjamin Nagler, Sian Barbosa, Jennifer Koch, Artur Widera
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引用次数: 0

摘要

无序对物理系统的作用已在宏观和微观世界中得到广泛研究。虽然静态无序在很多情况下都能很好地理解,但随时间变化的无序对量子气体的影响仍然鲜有研究。在我们的实验装置中,我们引入了一种能够产生时间控制的光斑无序的方法,并对其进行了表征。实验中,相干光照射一个静态和旋转扩散器的组合,从而收集到扩散器结构导致的空间变化相位和相对旋转导致的时间变化相位。通过控制扩散器的旋转,可以改变斑点的实现,或者在未来的工作中,改变斑点图案变化的特征时间尺度,即相关时间,与所研究的量子气体的典型时间尺度相匹配。我们通过测量不同强度模式的交叉相关强度分布来确定斑点模式的原位特征。在原位,我们观察其对分子玻色-爱因斯坦凝聚体(BEC)的影响,并交叉相关不同斑点现实中探测到的 BEC 的密度分布。当一个扩散器围绕共同光轴相对于另一个扩散器旋转时,我们跟踪光学斑点的强度交叉相关性和量子气体的密度交叉相关性。我们的结果显示,两种测量方法的结果具有可比性。通过这种设置,我们可以根据量子气体的特性调整无序势。这些研究为利用受控动态无序势研究相互作用量子气体中的非平衡物理学铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Characterizing quantum gases in time-controlled disorder realizations using cross-correlations of density distributions
The role of disorder on physical systems has been widely studied in the macroscopic and microscopic world. While static disorder is well understood in many cases, the impact of time-dependent disorder on quantum gases is still poorly investigated. In our experimental setup, we introduce and characterize a method capable of producing time-controlled optical-speckle disorder. Experimentally, coherent light illuminates a combination of a static and a rotating diffuser, thereby collecting a spatially varying phase due to the diffusers’ structure and a temporally variable phase due to the relative rotation. Controlling the rotation of the diffuser allows changing the speckle realization or, for future work, the characteristic time scale of the change of the speckle pattern, i.e., the correlation time, matching typical time scales of the quantum gases investigated. We characterize the speckle pattern ex-situ by measuring its intensity distribution cross-correlating different intensity patterns. In- situ, we observe its impact on a molecular Bose-Einstein condensate (BEC) and cross- correlate the density distributions of BECs probed in different speckle realizations. As one diffuser rotates relative to the other around the common optical axis, we trace the optical speckle’s intensity cross-correlations and the quantum gas’ density cross- correlations. Our results show comparable outcomes for both measurement methods. The setup allows us to tune the disorder potential adapted to the characteristics of the quantum gas. These studies pave the way for investigating nonequilibrium physics in interacting quantum gases using controlled dynamical-disorder potentials.
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