Yun Hansik, Lee Seung-Yeol, Hong Keehoon, Yeom Jiwoon, Lee Byoungho
National Creative Research Center for Active Plasmonics Application Systems, Inter-University Semiconductor Research Center and School of Electrical Engineering, Seoul National University, Seoul 151-744, Republic of Korea.
Nat Commun. 2015 May 20;6:7133. doi: 10.1038/ncomms8133.
Despite steady technological progress, displays are still subject to inherent limitations in resolution improvement and pixel miniaturization because a series of colours is generally expressed by a combination of at least three primary colour pixels. Here we propose a structure comprising a metal cavity and a nanoaperture, which we refer to as a cavity-aperture, to simultaneously control the colour and intensity of transmitted light in a single pixel. The metal cavity constructs plasmonic standing waves to organize the spatial distribution of amplitudes according to wavelength, and the nanoaperture permits light with a specific wavelength and amplitude to pass through it, depending on the nanoaperature's relative position in the cavity and the polarization state of the incident light. Therefore, the cavity-aperture has the potential to function as a dynamic colour pixel. This design method may be helpful in developing various photonic devices, such as micro-imaging systems and multiplexed sensors.
尽管技术不断进步,但显示器在分辨率提升和像素小型化方面仍存在固有局限性,因为一系列颜色通常由至少三个原色像素的组合来表示。在此,我们提出一种由金属腔和纳米孔径组成的结构,我们将其称为腔 - 孔径结构,以在单个像素中同时控制透射光的颜色和强度。金属腔构建等离子体驻波,根据波长来组织振幅的空间分布,而纳米孔径则允许具有特定波长和振幅的光通过,这取决于纳米孔径在腔中的相对位置以及入射光的偏振状态。因此,腔 - 孔径结构有潜力作为一个动态颜色像素发挥作用。这种设计方法可能有助于开发各种光子器件,如显微成像系统和多路复用传感器。