观测随机二聚体无序 SSH 晶格中的重入金属-绝缘体转变

Ze-Sheng Xu, Jun Gao, Adrian Iovan, Ivan M. Khaymovich, Val Zwiller, Ali W. Elshaari
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引用次数: 0

摘要

局域化、量子输运和无序之间的相互关系一直是科学研究中引人入胜的焦点。传统上,物理学界普遍认为,在一维系统中,随着无序度的增加,局域化会加强,从而引发金属-绝缘体转变。然而,最近的一项理论研究 [Phys. Rev. Lett.在这里,我们首次利用实验友好模型--具有随机二聚体无序的光子 SSH 晶格--通过增量调整合成电位实现了再入定位的实验观测。在存在相关现场电位的情况下,随着无序度的不断增加,某些特征态会在局部化转变之后表现出扩展行为。我们通过激发特定晶格位点并记录光分布,直接探测无序晶格中的波函数。通过观察归一化参与比中的异常峰值,我们进一步验证了这种重入现象。我们的研究丰富了人们对无序介质传输的理解,并凸显了集成光子学在模拟复杂凝聚态物理现象方面的巨大潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Observation of reentrant metal-insulator transition in a random-dimer disordered SSH lattice

Observation of reentrant metal-insulator transition in a random-dimer disordered SSH lattice
The interrelationship between localization, quantum transport, and disorder has remained a fascinating focus in scientific research. Traditionally, it has been widely accepted in the physics community that in one-dimensional systems, as disorder increases, localization intensifies, triggering a metal-insulator transition. However, a recent theoretical investigation [Phys. Rev. Lett. 126, 106803] has revealed that the interplay between dimerization and disorder leads to a reentrant localization transition, constituting a remarkable theoretical advancement in the field. Here, we present the first experimental observation of reentrant localization using an experimentally friendly model, a photonic SSH lattice with random-dimer disorder, achieved by incrementally adjusting synthetic potentials. In the presence of correlated on-site potentials, certain eigenstates exhibit extended behavior following the localization transition as the disorder continues to increase. We directly probe the wave function in disordered lattices by exciting specific lattice sites and recording the light distribution. This reentrant phenomenon is further verified by observing an anomalous peak in the normalized participation ratio. Our study enriches the understanding of transport in disordered mediums and accentuates the substantial potential of integrated photonics for the simulation of intricate condensed matter physics phenomena.
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