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实验演示了硅纳米柱阵列的面内负角度折射。

Experimental demonstration of in-plane negative-angle refraction with an array of silicon nanoposts.

机构信息

State Key Laboratory of Functional Materials for Informatics, Shanghai Institute of Microsystem and Information Technology, Chinese Academy of Sciences , Shanghai 200050, China.

出版信息

Nano Lett. 2015 Mar 11;15(3):2055-60. doi: 10.1021/nl5049516. Epub 2015 Feb 16.

Abstract

Controlling an optical beam is fundamental in optics. Recently, unique manipulation of optical wavefronts has been successfully demonstrated by metasurfaces. However, these artificially engineered nanostructures have thus far been limited to operate on light beams propagating out-of-plane. The in-plane operation is critical for on-chip photonic applications. Here, we demonstrate an anomalous negative-angle refraction of a light beam propagating along the plane, by designing a thin dielectric array of silicon nanoposts. The circularly polarized dipoles induced by the high-permittivity nanoposts at the scattering resonance significantly shape the wavefront of the light beam and bend it anomalously. The unique capability of a thin line of the nanoposts for manipulating in-plane wavefronts makes the device extremely compact. The low loss all-dielectric structure is compatible with complementary metal-oxide semiconductor technologies, offering an effective solution for in-plane beam steering and routing for on-chip photonics.

摘要

控制光束在光学中至关重要。最近,通过超表面成功地展示了对光波前的独特操控。然而,这些人为设计的纳米结构迄今为止仅限于在离轴传播的光束上运行。面内操作对于片上光子应用至关重要。在这里,我们通过设计硅纳米柱的薄介电阵列,演示了沿平面传播的光束的异常负角折射。在散射共振处由高介电常数纳米柱引起的圆偏振偶极子显著地改变了光束的波前,并使其异常弯曲。纳米柱的细线用于操控面内波前的独特能力使得该器件极其紧凑。低损耗全介质结构与互补金属氧化物半导体技术兼容,为片上光子学中的面内光束转向和路由提供了有效的解决方案。

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