论文标题

aharonov-bohm笼子和超电原子中的安德森过渡

Aharonov-Bohm Caging and Inverse Anderson transition in Ultracold Atoms

论文作者

Li, Hang, Dong, Zhaoli, Longhi, Stefano, Liang, Qian, Xie, Dizhou, Yan, Bo

论文摘要

Aharonov-Bohm(AB)Caging是一种特殊的平面定位机制,引起了对不同物理领域的极大兴趣。可以利用AB笼子来探索平板系统中量子传输的丰富和异国物理,在该系统中,几何挫败感,混乱和相关性以协同和独特的方式与普通的分散频带系统相比。与普通的安德森本地化相反,在平面系统障碍中诱导定位并阻止运输的普通定位可以诱导流动性,这是一种被称为倒数安德森过渡的现象。在这里,我们报告了在具有量身定制的量规场的超速原子的动量空间中使用综合晶格对AB笼的实验实现,这证明了由于平坦带和倒数二进制二进制疾病添加到系统中时,由于平坦带和逆Anderson过渡引起的几何定位。我们在多体环境中的实验平台提供了一个呈现的量子模拟器,可以很好地探索平面系统的工程量规场,定位和拓扑特性之间的相互作用。

Aharonov-Bohm (AB) caging, a special flat-band localization mechanism, has spurred great interest in different areas of physics. AB caging can be harnessed to explore the rich and exotic physics of quantum transport in flatband systems, where geometric frustration, disorder and correlations act in a synergetic and distinct way than in ordinary dispersive band systems. In contrast to the ordinary Anderson localization, where disorder induces localization and prevents transport, in flat band systems disorder can induce mobility, a phenomenon dubbed inverse Anderson transition. Here, we report on the experimental realization of the AB cage using a synthehtic lattice in the momentum space of ultracold atoms with tailored gauge fields, demonstrate the geometric localization due to the flat band and the inverse Anderson transition when correlated binary disorder is added to the system. Our experimental platform in a many-body environment provides a fashiinating quantum simulator where the interplay between engineered gauge fields, localization, and topological properties of flat band systems can be finely explored.

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