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Colouration by total internal reflection and interference at microscale concave interfaces

彩虹色 微尺度化学 结构着色 干扰(通信) 全内反射 光学现象 光学 光散射 波长 衍射 反射(计算机编程) 光电子学 散射 材料科学 物理 光子晶体 计算机科学 数学 频道(广播) 程序设计语言 数学教育 计算机网络
作者
Amy E. Goodling,Sara Nagelberg,Bryan Kaehr,Caleb H. Meredith,Seong Ik Cheon,Ashley P. Saunders,Mathias Kolle,Lauren D. Zarzar
出处
期刊:Nature [Nature Portfolio]
卷期号:566 (7745): 523-527 被引量:189
标识
DOI:10.1038/s41586-019-0946-4
摘要

Many physical phenomena create colour: spectrally selective light absorption by pigments and dyes1,2, material-specific optical dispersion3 and light interference4–11 in micrometre-scale and nanometre-scale periodic structures12–17. In addition, scattering, diffraction and interference mechanisms are inherent to spherical droplets18, which contribute to atmospheric phenomena such as glories, coronas and rainbows19. Here we describe a previously unrecognized mechanism for creating iridescent structural colour with large angular spectral separation. Light travelling along different trajectories of total internal reflection at a concave optical interface can interfere to generate brilliant patterns of colour. The effect is generated at interfaces with dimensions that are orders of magnitude larger than the wavelength of visible light and is readily observed in systems as simple as water drops condensed on a transparent substrate. We also exploit this phenomenon in complex systems, including multiphase droplets, three-dimensional patterned polymer surfaces and solid microparticles, to create patterns of iridescent colour that are consistent with theoretical predictions. Such controllable structural colouration is straightforward to generate at microscale interfaces, so we expect that the design principles and predictive theory outlined here will be of interest both for fundamental exploration in optics and for application in functional colloidal inks and paints, displays and sensors. A mechanism for creating patterns of iridescent structural colour by total internal reflection of light beams along a concave optical interface leading to interference is described, for complex microscopic systems and for systems as simple as condensed water drops.

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