Li Tao, Asbahii Mohamed, Lim Jian-Yee, Xie Hong, Koh Chan-Wai, Goh Min-Hao, Ong Kian-Soo, Zhang Hang, Ding Ding
Institute of Engineering Thermophysics, Chinese Academy of Sciences, University of Chinese Academy of Sciences, Beijing 100049, China.
University of Chinese Academy of Sciences, Beijing 100049, China.
Nanomaterials (Basel). 2019 Oct 21;9(10):1497. doi: 10.3390/nano9101497.
Subwavelength gratings have been of great interest recently due to their ability to eliminate multiple orders. However, high index contrast ( Δ n ∼ 3 ) is typically achieved using metals or high-index dielectrics surrounded by vacuum in order to maintain good optical selectivity. Here, we theoretically propose and experimentally realize a selective subwavelength grating using an index contrast of Δ n ∼ 1.2 without vacuum. Despite its low index contrast, our simulation and experiments show that good optical selectivity is achieved using the same physics as subwavelength gratings made of high-index contrast. Such polymer-based encapsulated gratings are easier to scale up for use in large-area applications such as photovoltaics and lighting.
亚波长光栅由于其消除多个衍射级次的能力,近来备受关注。然而,为了保持良好的光学选择性,通常使用金属或被真空包围的高折射率电介质来实现高折射率对比度(Δn ∼ 3)。在此,我们从理论上提出并通过实验实现了一种选择性亚波长光栅,其折射率对比度为Δn ∼ 1.2且无需真空。尽管其折射率对比度较低,但我们的模拟和实验表明,利用与由高折射率对比度材料制成的亚波长光栅相同的物理原理,可实现良好的光学选择性。这种基于聚合物的封装光栅更易于扩大规模,以用于诸如光伏和照明等大面积应用。