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利用分步式腔谐振器实现动态彩色显示。

Dynamic Color Displays Using Stepwise Cavity Resonators.

机构信息

State Key Laboratory of Advanced Design and Manufacturing for Vehicle Body, College of Mechanical and Vehicle Engineering, Hunan University , 410082 Changsha, People's Republic of China.

Max Planck Institute for Intelligent Systems , Heisenbergstrasse 3, 70569 Stuttgart, Germany.

出版信息

Nano Lett. 2017 Sep 13;17(9):5555-5560. doi: 10.1021/acs.nanolett.7b02336. Epub 2017 Aug 1.

Abstract

High-resolution multicolor printing based on pixelated optical nanostructures is of great importance for promoting advances in color display science. So far, most of the work in this field has been focused on achieving static colors, limiting many potential applications. This inevitably calls for the development of dynamic color displays with advanced and innovative functionalities. In this Letter, we demonstrate a novel dynamic color printing scheme using magnesium-based pixelated Fabry-Pérot cavities by gray scale nanolithography. With controlled hydrogenation and dehydrogenation, magnesium undergoes unique metal and dielectric transitions, enabling distinct blank and color states from the pixelated Fabry-Pérot resonators. Following such a scheme, we first demonstrate dynamic Ishihara plates, in which the encrypted images can only be read out using hydrogen as information decoding key. We also demonstrate a new type of dynamic color generation, which enables fascinating transformations between black/white printing and color printing with fine tonal tuning. Our work will find wide-ranging applications in full-color printing and displays, colorimetric sensing, information encryption and anticounterfeiting.

摘要

基于像素化光学纳米结构的高分辨率彩色打印对于推动颜色显示科学的发展具有重要意义。到目前为止,该领域的大部分工作都集中在实现静态颜色上,限制了许多潜在的应用。这不可避免地要求开发具有先进和创新功能的动态彩色显示器。在这封信件中,我们通过灰度纳米光刻展示了一种使用基于镁的像素化法布里-珀罗腔的新型动态彩色打印方案。通过控制氢化和脱氢,镁经历了独特的金属和介电转变,使像素化法布里-珀罗谐振器呈现出明显的空白和颜色状态。按照这种方案,我们首先展示了动态石原氏检测板,其中加密图像只能使用氢气作为信息解码密钥才能读出。我们还展示了一种新型动态颜色生成,它可以在黑白打印和彩色打印之间进行精细色调调整的迷人转换。我们的工作将在全彩色打印和显示、比色传感、信息加密和防伪等领域得到广泛应用。

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