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基于自由曲面多模结构的大角度多功能超表面

Large-Angle, Multifunctional Metagratings Based on Freeform Multimode Geometries.

机构信息

Department of Applied Physics and ‡Department of Electrical Engineering, Stanford University , Stanford, California 94305, United States.

出版信息

Nano Lett. 2017 Jun 14;17(6):3752-3757. doi: 10.1021/acs.nanolett.7b01082. Epub 2017 May 3.

Abstract

We show that silicon-based metagratings capable of large-angle, multifunctional performance can be realized using inverse freeform design. These devices consist of nonintuitive nanoscale patterns and support a large number of spatially overlapping optical modes per unit area. The quantity of modes, in combination with their optimized responses, provides the degrees of freedom required to produce high-efficiency devices. To demonstrate the power and versatility of our approach, we fabricate metagratings that can efficiently deflect light to 75° angles and multifunctional devices that can steer beams to different diffraction orders based on wavelength. A theoretical analysis of the Bloch modes supported by these devices elucidates the spatial mode profiles and coupling dynamics that make high-performance beam deflection possible. This approach represents a new paradigm in nano-optical mode engineering and utilizes different physics from the current state-of-the-art, which is based on the stitching of noninteracting waveguide structures. We envision that inverse design will enable new classes of high-performance photonic systems and new strategies toward the nanoscale control of light fields.

摘要

我们展示了使用逆自由曲面设计可以实现基于硅的大角度多功能亚波长光栅。这些器件由非直观的纳米级图案组成,每个单位面积支持大量空间重叠的光学模式。模式的数量,结合其优化的响应,提供了产生高效器件所需的自由度。为了展示我们方法的强大功能和多功能性,我们制造了能够高效地将光偏转 75°的亚波长光栅和能够根据波长将光束引导到不同衍射级的多功能器件。对这些器件所支持的 Bloch 模式的理论分析阐明了使高性能光束偏转成为可能的空间模式分布和耦合动力学。这种方法代表了纳米光学模式工程的一个新范例,并利用了与当前基于不相互作用波导结构拼接的最先进技术不同的物理原理。我们设想,逆设计将能够实现新一类高性能光子系统,并为纳米尺度光场控制提供新策略。

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