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关于吸收截面与等离子体颜色产生的相关性

On the correlation of absorption cross-section with plasmonic color generation.

作者信息

Rezaei Soroosh Daqiqeh, Ho Jinfa, Ng Ray Jia Hong, Ramakrishna Seeram, Yang Joel K W

出版信息

Opt Express. 2017 Oct 30;25(22):27652-27664. doi: 10.1364/OE.25.027652.

Abstract

Through numerical simulations, we investigate the correlation between the absorption cross-section and the color saturation of plasmonic nanostructures of varying density. Understanding this correlation, enables the prediction of an optimal nanostructure separation, or combinations of different nanostructure sizes for plasmonic color printing applications. Here, we use metal-insulator-metal (MIM) aluminum nanostructures that support gap-plasmons. Large absorption cross-sections were observed that exceed twelve times the physical cross-section of the nanostructure disks. We derive a set of equations to determine the optimal separation for a periodic array using the absorption cross-section of an individual structure to realize saturated colors. Using the optimum pitch and enabled by the large absorption cross-sections of our structures, we employ color mixing strategies to realize a wider color gamut. The simulated color gamut exceeds the sRGB gamut for some colors, and includes dark tones. Color mixing using structures with large absorption cross-sections is a practical approach to generate a broad range of colors, in comparison to fabricating structures with continuously varying sizes.

摘要

通过数值模拟,我们研究了不同密度的等离子体纳米结构的吸收截面与颜色饱和度之间的相关性。理解这种相关性有助于预测等离子体彩色印刷应用中最佳的纳米结构间距,或不同纳米结构尺寸的组合。在这里,我们使用支持间隙等离子体的金属-绝缘体-金属(MIM)铝纳米结构。观察到较大的吸收截面,其超过了纳米结构圆盘物理截面的十二倍。我们推导了一组方程,利用单个结构的吸收截面来确定周期性阵列的最佳间距,以实现饱和颜色。利用我们结构的最佳间距和较大的吸收截面,我们采用颜色混合策略来实现更宽的色域。模拟的色域对于某些颜色超过了sRGB色域,并且包括暗色调。与制造尺寸连续变化的结构相比,使用具有大吸收截面的结构进行颜色混合是产生广泛颜色范围的一种实用方法。

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