Pyzh Maxim, Keiler Kevin, Mistakidis Simeon I, Schmelcher Peter
Center for Optical Quantum Technologies, Department of Physics, University of Hamburg, Luruper Chaussee 149, 22761 Hamburg, Germany.
The Hamburg Centre for Ultrafast Imaging, Universität Hamburg, Luruper Chaussee 149, 22761 Hamburg, Germany.
Entropy (Basel). 2021 Feb 26;23(3):290. doi: 10.3390/e23030290.
We address the interplay of few lattice trapped bosons interacting with an impurity atom in a box potential. For the ground state, a classification is performed based on the fidelity allowing to quantify the susceptibility of the composite system to structural changes due to the intercomponent coupling. We analyze the overall response at the many-body level and contrast it to the single-particle level. By inspecting different entropy measures we capture the degree of entanglement and intraspecies correlations for a wide range of intra- and intercomponent interactions and lattice depths. We also spatially resolve the imprint of the entanglement on the one- and two-body density distributions showcasing that it accelerates the phase separation process or acts against spatial localization for repulsive and attractive intercomponent interactions, respectively. The many-body effects on the tunneling dynamics of the individual components, resulting from their counterflow, are also discussed. The tunneling period of the impurity is very sensitive to the value of the impurity-medium coupling due to its effective dressing by the few-body medium. Our work provides implications for engineering localized structures in correlated impurity settings using species selective optical potentials.
我们研究了在盒势中与杂质原子相互作用的少数晶格捕获玻色子之间的相互作用。对于基态,基于保真度进行分类,该保真度允许量化复合系统由于组分间耦合而对结构变化的敏感性。我们在多体水平上分析整体响应,并将其与单粒子水平进行对比。通过检查不同的熵度量,我们捕捉了广泛的组分内和组分间相互作用以及晶格深度下的纠缠程度和种内相关性。我们还在空间上解析了纠缠在一体和两体密度分布上的印记,表明它分别加速了相分离过程或在排斥和吸引的组分间相互作用中对抗空间局域化。还讨论了由于单个组分的逆流而对其隧穿动力学产生的多体效应。杂质的隧穿周期由于其被少数体介质有效修饰而对杂质 - 介质耦合的值非常敏感。我们的工作为使用物种选择性光学势在相关杂质环境中设计局域结构提供了启示。