论文标题
互联的准膜和非热性的本地化控制
Localization control born of intertwined quasiperiodicity and non-Hermiticity
论文作者
论文摘要
在没有周期性长度尺度的情况下,准膜系统既不是随机混乱也不是翻译不变的。基于它们的不相差的顺序,已经积极地讨论了新颖的物理特性,例如关键状态和自相似波形。但是,在非富米顿人通常描述的开放系统中,几乎不知道这种准二何种秩序将如何导致新现象。在这项工作中,我们首次展示了交织在一起的准静态性和非热性可以引起惊人的影响:对扩展状态的批判和局部状态的完美定位。特别是,我们探索了存在非重生跳跃阶段的Aubry-Andre-fibonacci(AAF)模型中的波函数定位特征。在这里,AAF模型连续地插值金属与绝缘体过渡和关键状态之间的两个不同限制,并且在跳跃相因子中编码了非热度。令人惊讶的是,它们的相互作用导致了国家的完美离域,这在具有墓穴的准碘系统中从未允许。通过通过反参与率和分形维度来量化定位,我们讨论了非热跳跃阶段可导致对波功能的定位特征的微妙控制。我们的工作提供了(1)通过非热跳跃阶段在准碘系统中的新兴定位过渡,(2)使用光子晶体对关键状态的详细定位控制对关键状态的详细定位控制,我们建议对可控的局部化,关键和离域状态的实验实现。
Quasiperiodic systems are neither randomly disordered nor translationally invariant in the absence of periodic length scales. Based on their incommensurate order, novel physical properties such as critical states and self-similar wavefunctions have been actively discussed. However, in open systems generally described by the non-Hermitian Hamiltonians, it is hardly known how such quasiperiodic order would lead to new phenomena. In this work, we show for the first time that the intertwined quasiperiodicity and non-Hermiticity can give rise to striking effects: perfect delocalization of the critical and localized states to the extended states. In particular, we explore the wave function localization character in the Aubry-Andre-Fibonacci (AAF) model where non-reciprocal hopping phases are present. Here, the AAF model continuously interpolates the two different limit between metal to insulator transition and critical states, and the nonHermiticity is encoded in the hopping phase factors. Surprisingly, their interplay results in the perfect delocalization of the states, which is never allowed in quasiperiodic systems with Hermiticity. By quantifying the localization via inverse participation ratio and the fractal dimension, we discuss that the non-Hermitian hopping phase leads to delicate control of localization characteristics of the wave function. Our work offers (1) emergent delocalization transition in quasiperiodic systems via non-Hermitian hopping phase, (2) detailed localization control of the critical states, In addition, we suggest an experimental realization of controllable localized, critical and delocalized states, using photonic crystals.