论文标题

教程:原子薄光学的激子共鸣

Tutorial: Exciton resonances for atomically-thin optics

论文作者

Lynch, Jason, Guarneri, Ludovica, Jariwala, Deep, van de Groep, Jorik

论文摘要

通过利用金属或介电纳米颗粒中的光谐振来实现平坦的光学元件,以获得对散射光的振幅和相位的准确控制。尽管效率很高,但这些共鸣是静态的,很难主动调节。原子薄的2D半导体中的激子共鸣提供了一种新颖且独特的谐振光 - 物质相互作用,这为光学跨面带来了新的机会。它们的共振特性是材料的带状结构的固有的,并且不依赖纳米级模式,并且使用外部刺激非常可调。在本教程中,我们介绍了激子共振可以在原子上稀薄的光学器件发挥的作用。我们描述了元表面物理学的基本要素,提供了激子物理学的背景以及对激子材料的全面概述。激子证明,通过与金属和介电元面的耦合,可以在混合元整日中提供新的自由度和增强的光结合相互作用。还讨论了激发型电子密度的较高灵敏度,还讨论了电触发的纳米光器件和原子上薄的光学元件的首次演示。元城市中激子的未来看起来很有希望,而主要的挑战在于大区域的增长和高质量材料的精确整合。

Metasurfaces enable flat optical elements by leveraging optical resonances in metallic or dielectric nanoparticles to obtain accurate control over the amplitude and phase of the scattered light. While highly efficient, these resonances are static and difficult to tune actively. Exciton resonances in atomically thin 2D semiconductors provide a novel and uniquely strong resonant light-matter interaction, which presents a new opportunity for optical metasurfaces. Their resonant properties are intrinsic to the band structure of the material and do not rely on nanoscale patterns and are highly tunable using external stimuli. In this tutorial, we present the role that excitons resonances can play for atomically-thin optics. We describe the essentials of metasurface physics, provide a background on exciton physics, as well as a comprehensive overview of excitonic materials. Excitons demonstrate to provide new degrees of freedom and enhanced light-matter interactions in hybrid metasurfaces through coupling with metallic and dielectric metasurfaces. Using the high sensitivity of excitons to the medium's electron density, the first demonstrations of electrically-tunable nanophotonic devices and atomically-thin optical elements are also discussed. The future of excitons in metasurfaces looks promising, while the main challenge lies in large-area growth and precise integration of high-quality materials.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源