Photonic Systems Laboratory, Department of Electrical and Computer Engineering, Seoul National University, Seoul 08826, Korea.
Sci Adv. 2016 Oct 14;2(10):e1501851. doi: 10.1126/sciadv.1501851. eCollection 2016 Oct.
Disorder plays a critical role in signal transport by controlling the correlation of a system, as demonstrated in various complex networks. In wave physics, disordered potentials suppress wave transport, because of their localized eigenstates, from the interference between multiple scattering paths. Although the variation of localization with tunable disorder has been intensively studied as a bridge between ordered and disordered media, the general trend of disorder-enhanced localization has remained unchanged, and the existence of complete delocalization in highly disordered potentials has not been explored. We propose the concept of "metadisorder": randomly coupled optical systems in which eigenstates can be engineered to achieve unusual localization. We demonstrate that one of the eigenstates in a randomly coupled system can always be arbitrarily molded, regardless of the degree of disorder, by adjusting the self-energy of each element. Ordered waves with the desired form are then achieved in randomly coupled systems, including plane waves and globally collective resonances. We also devise counterintuitive functionalities in disordered systems, such as "small-world-like" transport from non-Anderson-type localization, phase-conserving disorder, and phase-controlled beam steering.
无序通过控制系统的相关性在信号传输中起着关键作用,这在各种复杂网络中得到了证明。在波物理学中,无序势由于其局域本征态而抑制波传输,因为它们来自多个散射路径之间的干涉。尽管随着可调谐无序的局域化变化已经作为有序和无序介质之间的桥梁得到了深入研究,但无序增强局域化的一般趋势仍然没有改变,并且在高度无序势中完全去局域化的存在尚未得到探索。我们提出了“超无序”的概念:可以对随机耦合光学系统中的本征态进行工程设计,以实现异常局域化。我们证明,通过调整每个元件的自能,随机耦合系统中的一个本征态总是可以任意塑造,无论无序程度如何。然后,在随机耦合系统中实现了具有所需形式的有序波,包括平面波和全局集体共振。我们还在无序系统中设计了反直觉的功能,例如非安德森局域化的“小世界样”传输、相位守恒无序和相位控制光束转向。