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A Plasmonic Paintera??s Method of Color Mixing for a Continuous Red-Green-Blue (RGB) Palette

DOI:10.1021/acsnano.9b07523 期刊:ACS Nano 出版年份:2020 更新时间:2025-09-16 10:30:52
摘要: The ability of mixing colors with remarkable results had long been exclusive to the talents of master painters. By finely combining colors at different amounts on the palette, intuitively, they obtain smooth gradients with any given color. Creating such smooth color variations through scattering by the structural patterning of a surface, as opposed to color pigments, has long remained a challenge. Here, we borrow from the painter’s approach and demonstrate color mixing generated by an optical metasurface. We propose a single-layer plasmonic color pixel and a method for nanophotonic structural color mixing based on the additive RGB color model. The color pixels consist of plasmonic nanorod arrays that generate vivid primary colors and enable independent control of color brightness without affecting chromaticity, by simply varying geometric in-plane parameters. By interleaving different nanorod arrays, we combine up to three primary colors on a single pixel. Based on this, two- and three-color mixing is demonstrated, enabling the continuous coverage of a plasmonic RGB color gamut and yielding a palette with a virtually unlimited number of colors. With this multi-resonant color pixel, we show the photorealistic printing of color and monochrome images at the nanoscale, with ultra-smooth transitions in color and brightness. Our color mixing approach can be applied to a broad range of scatterer designs and materials, and has the potential to be used for multi-wavelength color filters and dynamic photorealistic displays.
作者: Claudio U Hail,Gabriel Schnoering,Mehdi Damak,Dimos Poulikakos,Hadi Eghlidi
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Investigating the generation and mixing of vivid colors through plasmonic nanostructures for applications in photorealistic printing and displays.

The study successfully demonstrates a plasmonic color pixel and color mixing approach that allows for the independent control of color chromaticity and luminance. This method enables the continuous coverage of a significant portion of the sRGB color gamut and the photorealistic reproduction of images with smooth color transitions. The approach has potential applications in multi-wavelength color filters and dynamic photorealistic displays.

The study is limited by the spectral shifts due to near-field interactions between closely spaced scatterers, which can affect color mixing accuracy. Additionally, the color gamut coverage is currently 39% of the sRGB color gamut, indicating room for expansion.

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