论文标题

高阶光子腔模式启用了3D结构颜色

High-order Photonic Cavity Modes Enabled 3D Structural Color

论文作者

Liu, Hailong, Wang, Hongtao, Wang, Hao, Deng, Jie, Ruan, Qifeng, Zhang, Wang, Abdelraouf, Omar A. M., Ang, Noman Soo Seng, Dong, Zhaogang, Yang, Joel K. W., Liu, Hong

论文摘要

直接打印三维任意形状的挑战仍然是一个挑战。通过两光岩光刻(TPL)制造的木架光子晶体(WPC)是有望作为构建块,可以产生3D几何形状,从而产生结构颜色,因为它们能够表现出全向或各向异性光光子停靠器。但是,现有的方法集中在从顶部照亮WPC时实现结构颜色,这需要超出商业TPL和/或后处理技术极限的打印决议。在这里,我们设计了一种新的策略,以支持WPC上的侧面弹片上的高阶光子腔模式,该模式令人惊讶地在可见光谱中产生了较大的反射率峰。基于此,我们演示了3D光子结构颜色的一步打印,而无需后处理或次波长特征。具有反射率峰的生动颜色,最大宽度为〜25 nm,最大反射率为50%,SRGB的范围约为85%,并且达到了较大的视角。此外,我们还展示了由WPC作为单位电池组成​​的任意形状的3D对象中颜色的体素水平的操纵和控制,这在动态颜色显示,比色感,反式遇到和轻度m-M-M-M-M-MANTACTION平台中具有很大的应用。

It remains a challenge to directly print three-dimensional arbitrary shapes that exhibit structural colors at the micrometer scale. Woodpile photonic crystals (WPCs) fabricated via two-photon lithography (TPL) are promising as building blocks to produce 3D geometries that generate structural colors due to their ability to exhibit either omnidirectional or anisotropic photonic stopbands. However, existing approaches have focused on achieving structural colors when illuminating WPCs from the top, which necessitates print resolutions beyond the limit of commercial TPL and/or post-processing techniques. Here, we devised a new strategy to support high-order photonic cavity modes upon side-illumination on WPCs that surprisingly generate large reflectance peaks in the visible spectrum. Based on that, we demonstrate one-step printing of 3D photonic structural colors without requiring post-processing or subwavelength features. Vivid colors with reflectance peaks exhibiting a full width at half maximum of ~25 nm, a maximum reflectance of 50%, gamut of ~85% of sRGB, and large viewing angles, were achieved. In addition, we also demonstrated voxel-level manipulation and control of colors in arbitrary-shaped 3D objects constituted with WPCs as unit cells, which has great potential for applications in dynamic color displays, colorimetric sensing, anti-counterfeiting, and light-matter interaction platforms.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源