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用于电调逼真色彩梯度和深黑色的液晶驱动米氏谐振器。

Liquid crystal-powered Mie resonators for electrically tunable photorealistic color gradients and dark blacks.

作者信息

Badloe Trevon, Kim Joohoon, Kim Inki, Kim Won-Sik, Kim Wook Sung, Kim Young-Ki, Rho Junsuk

机构信息

Department of Mechanical Engineering, Pohang University of Science and Technology (POSTECH), Pohang, 37673, Republic of Korea.

Department of Biophysics, Institute of Quantum Biophysics, Sungkyunkwan University, Suwon, 16419, Republic of Korea.

出版信息

Light Sci Appl. 2022 Apr 29;11(1):118. doi: 10.1038/s41377-022-00806-8.

Abstract

Taking inspiration from beautiful colors in nature, structural colors produced from nanostructured metasurfaces have shown great promise as a platform for bright, highly saturated, and high-resolution colors. Both plasmonic and dielectric materials have been employed to produce static colors that fulfil the required criteria for high-performance color printing, however, for practical applications in dynamic situations, a form of tunability is desirable. Combinations of the additive color palette of red, green, and blue enable the expression of further colors beyond the three primary colors, while the simultaneous intensity modulation allows access to the full color gamut. Here, we demonstrate an electrically tunable metasurface that can represent saturated red, green, and blue pixels that can be dynamically and continuously controlled between on and off states using liquid crystals. We use this to experimentally realize ultrahigh-resolution color printing, active multicolor cryptographic applications, and tunable pixels toward high-performance full-color reflective displays.

摘要

受自然界美丽色彩的启发,由纳米结构超表面产生的结构色作为一种实现明亮、高饱和度和高分辨率色彩的平台已展现出巨大潜力。等离子体材料和介电材料都已被用于产生满足高性能彩色印刷所需标准的静态颜色,然而,对于动态场景中的实际应用而言,某种形式的可调性是可取的。红、绿、蓝加色法调色板的组合能够呈现出除三原色之外的更多颜色,同时强度的同步调制可实现全色域显示。在此,我们展示了一种电可调超表面,它能够呈现饱和的红、绿、蓝像素,这些像素可通过液晶在开启和关闭状态之间进行动态且连续的控制。我们利用这一特性通过实验实现了超高分辨率彩色印刷、有源多色加密应用以及面向高性能全彩反射式显示器的可调像素。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1218/9054757/2c225fbd0d00/41377_2022_806_Fig1_HTML.jpg

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