论文标题
非热的,安德森 - 局部化混合系统的异常运输状态
Anomalous transport regime in non-Hermitian, Anderson-localizing hybrid systems
论文作者
论文摘要
在无序环境中,波动传播的可能性会随着障碍的增加而减少,其最终极限是由于安德森定位而导致的接近零传播。在本地条件下,由于波浪被困在大部分样品中,而指数衰减的耦合将其捕获到边界。疾病的任何进一步增加都不会改变整体运输特性。在这里,我们报告了在非炎症环境下局部疾病下杂种颗粒的异常转运的实验证明。我们在一维铜样品中创建混合偏光量 - 光子状态,其梳状周期微结构设计用于微波频率。金属耗散意识到了必要的非热性。故意通过定期微观结构的故意改变引入障碍。通过近场探针实现了波函数和相的直接测量。在特定的疾病中,我们观察到由波函数的指数尾巴认可的杂种状态的安德森定位开始。但是,在更强的疾病和支持本地化的条件下,突然的迷你频段促进了传播的意外增强。传输可追溯到杂化粒子在多个共存的局部共振上跳跃,这些共振因非正交性而交换能量。这些新兴状态在强障碍下的所有配置中都表现出来,这表明形成了一种新型的运输方式。通过测量平均电导率,该电导率认可在强障碍下的混合动力,非热环境中的异常运输状态。这些实验性观察在非炎症条件下为疾病的范围开辟了新的未开发的途径。
In a disordered environment, the probability of transmission of a wave reduces with increasing disorder, the ultimate limit of which is the near-zero transmission due to Anderson localization. Under localizing conditions, transport is arrested because the wave is trapped in the bulk of the sample with decaying-exponential coupling to the boundaries. Any further increase in disorder does not modify the overall transport properties. Here, we report the experimental demonstration of a hitherto-unrealized anomalous transport of hybrid particles under localizing disorder in a non-Hermitian setting. We create hybrid polariton-photon states in a one-dimensional copper sample with a comb-shaped periodic microstructure designed for microwave frequencies. Metallic dissipation realizes the necessary non-Hermiticity. Disorder is introduced by deliberate alterations of the periodic microstructure. Direct measurement of wave-functions and phases was achieved by a near-field probe. At a particular disorder, We observe the onset of Anderson localization of the hybrid states endorsed by exponential tails of the wavefunction. However, at stronger disorder and under conditions that support localization, an unexpected enhancement in the transmission was facilitated by an emergent mini-band. The transmission was traced to the hopping of the hybrid particle over multiple co-existing localized resonances that exchange energy due to the non-orthogonality. These emergent states are manifested in all configurations under strong disorder, suggesting the formation of a novel transport regime. This is verified by measuring the averaged conductance which endorses an anomalous transport regime in the hybrid, non-Hermitian environment under strong disorder. These experimental observations open up new unexplored avenues in the ambit of disorder under non-Hermitian conditions.