论文标题
片上的片中的光诱捕莫伊尔·莫伊尔光子晶体板
On-chip Light Trapping in Bilayer Moiré Photonic Crystal Slabs
论文作者
论文摘要
在支持超低,紧凑的介电光子晶体的纳米谐振器的形成方面,最近取得了显着的进展,其具有特殊的高Q模式,可在可见或电信波长下运行。最近,研究人员探索了2D材料中的奇异电子相。该现象与具有高周期空间有序(例如石墨烯)的两层材料之间的角度有关。 Moire模式形成,并且在特定的旋转角度形成,电子行为显着变化,享有平坦的能量摩托克分散关系。具有电子互惠的光学类似物:双层光子晶体板可以实现平坦的条件。在这些条件下,传播模式的组速度为零,因此在横向和垂直方向上引起了Bloch波的无动量捕获,产生了高质量的因子和异常小的模态体积,最终导致Purcell效应的增强。 Moire结构的腔体,非常小的模式体积和通过整个Moire模式的空间测定提供了急剧不同的光整位方法,可以操纵自发发射。这为诸如低阈值激光,单光子源,量子电动力学,光子电路和量子信息处理等应用提供了许多机会。
There has been remarkable recent progress in the formation of nano-resonators that support ultra-low-loss, compact dielectric photonic crystals with exceptional high-Q modes that operate at visible or telecom wavelengths. New insights into modal engineering have recently emerged from researchers exploring exotic electronic phases in 2D materials. The phenomenon relates to a twist in the angle between two layers of materials with high periodic spatial ordering, such as graphene. A moire pattern forms, and at a particular magic angle of twist, the electronic behavior significantly changes, enjoying a flat energy-momentum dispersion relationship. There is an optical analog to the electron twistronics: bilayer moire photonic crystal slabs can realize a flat-band condition. Under these conditions, the propagating modes have zero group velocity, thus giving rise to momentum-free trapping of Bloch waves in both transverse and vertical directions, creating high quality-factors and exceptionally small modal volumes that eventually lead to the enhancement of the Purcell effect. The dramatically different means of light-localization afforded by moire-structured cavities, very small mode volumes, and spatial determination by the overall moire pattern can manipulate spontaneous emission. This provides many opportunities for applications such as low-threshold lasing, single-photon source, quantum electrodynamics, photonic circuit, and quantum information processing.