论文标题
在广义Aubry-André晶格中观察可调式移动边缘
Observation of tunable mobility edges in generalized Aubry-André lattices
论文作者
论文摘要
使用激光耦合原子动量模式的合成晶格,我们在实验上实现了一个最近提出的,最近提议的最近的邻邻紧密结合模型具有准二级位点能量调制,该模型具有由双重性对称性保护的精确迁移率。这些一维的紧密结合模型可以看作是众所周知的Aubry-André(AA)模型的概括,具有构成分析迁移率边缘关系的能量依赖性的自我二重性条件。通过绝热准备该模型系统的最低和最高能量本质状态并进行其参与率的微观测量值,我们跟踪迁移率边缘的演变,因为状态的能量依赖性密度通过模型的调谐参数进行了修改。我们的结果表明,与单粒子预测的偏差很大,这与有吸引力的相互作用一致,从而导致自陷型造成的最低能量状态的定位以及由于筛选而抑制了最高能量状态的定位。这项研究为定量研究对相互作用的影响铺平了道路。
Using synthetic lattices of laser-coupled atomic momentum modes, we experimentally realize a recently proposed family of nearest-neighbor tight-binding models having quasiperiodic site energy modulation that host an exact mobility edge protected by a duality symmetry. These one-dimensional tight-binding models can be viewed as a generalization of the well-known Aubry-André (AA) model, with an energy-dependent self duality condition that constitutes an analytical mobility edge relation. By adiabatically preparing the lowest and highest energy eigenstates of this model system and performing microscopic measurements of their participation ratio, we track the evolution of the mobility edge as the energy-dependent density of states is modified by the model's tuning parameter. Our results show strong deviations from single-particle predictions, consistent with attractive interactions causing both enhanced localization of the lowest energy state due to self-trapping and inhibited localization of the highest energy state due to screening. This study paves the way for quantitative studies of interaction effects on self duality induced mobility edges.