Localization and delocalization of light in photonic moiré lattices

准晶 物理 光子晶体 安德森本地化 旋转(数学) 准周期性 实现(概率) 离域电子 凝聚态物理 对称(几何) 平移对称性 晶体学点群 光子学 理论物理学 氮化硼 电子能带结构 随机性 偶极子 石墨烯 量子 准周期函数 量子力学 耗散系统 彭罗斯瓷砖 非周期图 斐波纳契数 拓扑(电路) 声子 色阶 量子纠缠 拓扑绝缘体 叠加原理
作者
Peng Wang,Yuanlin Zheng,Xianfeng Chen,Changming Huang,Yaroslav V. Kartashov,Lluis Torner,Vladimir V. Konotop,Fangwei Ye
出处
期刊:Nature [Nature Portfolio]
卷期号:577 (7788): 42-46 被引量:453
标识
DOI:10.1038/s41586-019-1851-6
摘要

Moire lattices consist of two superimposed identical periodic structures with a relative rotation angle. Moire lattices have several applications in everyday life, including artistic design, the textile industry, architecture, image processing, metrology and interferometry. For scientific studies, they have been produced using coupled graphene-hexagonal boron nitride monolayers1,2, graphene-graphene layers3,4 and graphene quasicrystals on a silicon carbide surface5. The recent surge of interest in moire lattices arises from the possibility of exploring many salient physical phenomena in such systems; examples include commensurable-incommensurable transitions and topological defects2, the emergence of insulating states owing to band flattening3,6, unconventional superconductivity4 controlled by the rotation angle7,8, the quantum Hall effect9, the realization of non-Abelian gauge potentials10 and the appearance of quasicrystals at special rotation angles11. A fundamental question that remains unexplored concerns the evolution of waves in the potentials defined by moire lattices. Here we experimentally create two-dimensional photonic moire lattices, which-unlike their material counterparts-have readily controllable parameters and symmetry, allowing us to explore transitions between structures with fundamentally different geometries (periodic, general aperiodic and quasicrystal). We observe localization of light in deterministic linear lattices that is based on flat-band physics6, in contrast to previous schemes based on light diffusion in optical quasicrystals12, where disorder is required13 for the onset of Anderson localization14 (that is, wave localization in random media). Using commensurable and incommensurable moire patterns, we experimentally demonstrate the two-dimensional localization-delocalization transition of light. Moire lattices may feature an almost arbitrary geometry that is consistent with the crystallographic symmetry groups of the sublattices, and therefore afford a powerful tool for controlling the properties of light patterns and exploring the physics of periodic-aperiodic phase transitions and two-dimensional wavepacket phenomena relevant to several areas of science, including optics, acoustics, condensed matter and atomic physics.
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