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通过自对准和互补等离子体纳米结构传输光的结构色。

Structural coloration of transmission light through self-aligned and complementary plasmonic nanostructures.

机构信息

Department of Bio and Brain Engineering, Korea Advanced Institute of Science and Technology (KAIST), 291 Daehak-ro, Yuseong-gu, Daejeon 34141, Republic of Korea.

出版信息

Nanoscale. 2018 Apr 5;10(14):6313-6317. doi: 10.1039/c8nr01006d.

Abstract

Structural coloration of natural surfaces often originates from the change of reflected colors depending on the viewing or illumination angle. Recently, the structural coloration of nanoplasmonic structures has attracted a great deal of attention due to high compactness, robust stability and high color-tunability, as well as high sensitivity to the incidence angle. Here we report complementary plasmonic structures (CPS) for transmission structural coloration by tailoring a single spectral peak depending on the incidence angle of light. The CPS features self-aligned silver nanohole and nanodisk arrays, supported by dielectric nanopillar arrays of hydrogen silsesquioxane. Unlike the conventional hybridized nanostructures of plasmonic nanohole and nanodisk arrays, the nanodisks of CPS effectively attenuate undesired spectral peaks of nanoholes by exploiting an extinction peak of nanodisks, serving as a spectral suppressor. As a result, a single transmission spectral peak becomes red-shifted from 736 nm to 843 nm as the incidence angle varies from 0° to 30°. This unique configuration provides a new direction for tunable filters that can be utilized for compact multispectral or hyperspectral imaging applications.

摘要

天然表面的结构色通常源于随观察或照明角度变化而反射颜色的变化。由于纳米等离子体结构具有高紧凑性、稳健稳定性和高可调节性,以及对入射角的高敏感性,因此最近受到了极大的关注。在这里,我们通过根据光的入射角来调整单个光谱峰,报告了互补等离子体结构(CPS)用于传输结构色。CPS 具有自对准的银纳米孔和纳米盘阵列,由氢倍半硅氧烷的介电纳米柱阵列支撑。与传统的等离子体纳米孔和纳米盘阵列的杂交纳米结构不同,CPS 的纳米盘通过利用纳米盘的消光峰有效地衰减了纳米孔的不需要的光谱峰,充当光谱抑制器。结果,当入射角从 0°变为 30°时,单个透射光谱峰从 736nm 红移到 843nm。这种独特的配置为可调滤波器提供了一个新的方向,可用于紧凑型多光谱或高光谱成像应用。

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