Jiang Zhi Hao, Lin Lan, Ma Ding, Yun Seokho, Werner Douglas H, Liu Zhiwen, Mayer Theresa S
Department of Electrical Engineering and Center for Nanoscale Science, The Pennsylvania State University, 121 Electrical Engineering East, University Park, PA 16802 (United States).
Sci Rep. 2014 Dec 19;4:7511. doi: 10.1038/srep07511.
Quasi two-dimensional metasurfaces composed of subwavelength nanoresonator arrays can dramatically alter the properties of light in an ultra-thin planar geometry, enabling new optical functions such as anomalous reflection and refraction, polarization filtering, and wavefront modulation. However, previous metasurface-based nanostructures suffer from low efficiency, narrow bandwidth and/or limited field-of-view due to their operation near the plasmonic resonance. Here we demonstrate plasmonic metasurface-based nanostructures for high-efficiency, angle-insensitive polarization transformation over a broad octave-spanning bandwidth. The structures are realized by optimizing the anisotropic response of an array of strongly coupled nanorod resonators to tailor the interference of light at the subwavelength scale. Nanofabricated reflective half-wave and quarter-wave plates designed using this approach have measured polarization conversion ratios and reflection magnitudes greater than 92% over a broad wavelength range from 640 to 1290 nm and a wide field-of-view up to ± 40°. This work outlines a versatile strategy to create metasurface-based photonics with diverse optical functionalities.
由亚波长纳米谐振器阵列组成的准二维超表面能够在超薄平面结构中显著改变光的特性,实现诸如异常反射和折射、偏振滤波以及波前调制等新型光学功能。然而,由于之前基于超表面的纳米结构在等离子体共振附近工作,它们存在效率低、带宽窄和/或视场受限等问题。在此,我们展示了基于等离子体超表面的纳米结构,可在跨越一个倍频程的宽频带上实现高效、角度不敏感的偏振转换。这些结构通过优化强耦合纳米棒谐振器阵列的各向异性响应来实现,以在亚波长尺度上定制光的干涉。利用这种方法设计的纳米制造反射半波片和四分之一波片,在640至1290nm的宽波长范围内以及高达±40°的宽视场下,测得的偏振转换率和反射幅度大于92%。这项工作概述了一种通用策略,用于创建具有多种光学功能的基于超表面的光子学。