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用于多波长超光学的多层非相互作用介质超表面

Multilayer Noninteracting Dielectric Metasurfaces for Multiwavelength Metaoptics.

作者信息

Zhou You, Kravchenko Ivan I, Wang Hao, Nolen J Ryan, Gu Gong, Valentine Jason

机构信息

Interdisciplinary Materials Science Program , Vanderbilt University , Nashville , Tennessee 37212 , United States.

Center for Nanophase Materials Sciences , Oak Ridge National Laboratory , Oak Ridge , Tennessee 37831 , United States.

出版信息

Nano Lett. 2018 Dec 12;18(12):7529-7537. doi: 10.1021/acs.nanolett.8b03017. Epub 2018 Nov 9.

Abstract

Metasurfaces provide a versatile platform for manipulating the wavefront of light using planar nanostructured surfaces. Transmissive metasurfaces, with full 2π phase control, are a particularly attractive platform for replacing conventional optical elements due to their small footprint and broad functionality. However, the operational bandwidth of metasurfaces has been a critical limitation and is directly connected to either their resonant response or the diffractive dispersion of their lattice. While multiwavelength and continuous band operation have been demonstrated, the elements suffer from either low efficiency, reduced imaging quality, or limited element size. Here, we propose a platform that provides for multiwavelength operation by employing tightly spaced multilayer dielectric metasurfaces. As a proof of concept, we demonstrate a multiwavelength metalens doublet (NA = 0.42) with focusing efficiencies of 38% and 52% at wavelengths of 1180 and 1680 nm, respectively. We further show how this approach can be extended to three-wavelength metalenses as well as a spectral splitter. This approach could find applications in fluorescent microscopy, digital imaging, and color routing.

摘要

超表面为利用平面纳米结构表面操纵光的波前提供了一个多功能平台。具有全2π相位控制的透射式超表面,因其占地面积小和功能广泛,是替代传统光学元件的一个特别有吸引力的平台。然而,超表面的工作带宽一直是一个关键限制,并且直接与其共振响应或晶格的衍射色散相关。虽然已经证明了多波长和连续波段操作,但这些元件存在效率低、成像质量下降或元件尺寸受限等问题。在这里,我们提出了一个通过采用紧密间隔的多层介质超表面来实现多波长操作的平台。作为概念验证,我们展示了一个多波长金属透镜 doublet(数值孔径 = 0.42),在波长1180和1680 nm处的聚焦效率分别为38%和52%。我们进一步展示了这种方法如何扩展到三波长金属透镜以及光谱分离器。这种方法可应用于荧光显微镜、数字成像和颜色路由。

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