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使用二聚体孔径阵列的偏振控制透射型等离子体彩色滤光片

Polarization-Controlled Transmissive Plasmonic Color Filter Using a Dimer-Aperture Array.

作者信息

Wu Shuhao, Connolly Peter W R, Pusino Vincenzo, Buller Gerald S, Cumming David R S

机构信息

James Watt School of Engineering, University of Glasgow, Glasgow, G12 8QQ, UK.

School of Engineering and Physical Sciences, Heriot-Watt University, Edinburgh, EH14 4AS, UK.

出版信息

Adv Sci (Weinh). 2025 May;12(19):e2501941. doi: 10.1002/advs.202501941. Epub 2025 Mar 24.

Abstract

Complex color and polarization selective technologies are of increasing importance in scientific, security, and commercial imaging applications. A new dimeric plasmonic filter structure based on periodic aperture arrays is reported to provide an effective method for making planar color-selective structures by exploiting the properties of extraordinary optical transmission in thin metal films. The visible band transmission-mode polarization-dependent color filters reported in this work exploit only a single layer of aluminum patterned using a hexagonally periodic dimer-ellipse aperture structure. It is shown experimentally that the structure exhibits a minimum extinction ratio of over 20, 100, and 150 for red, green, and blue channels respectively, and a peak transmission of over 30%. It is demonstrated that dual images can be encoded using polarization selectivity into a single structure. The fidelity of the method is demonstrated with micro-scale reproductions of complex artworks showing the ability to reproduce 76% of the sRGB color gamut with polarization selectivity. The structure can be readily fabricated with only a single-step lithography and etching process, so that the technique may be widely used.

摘要

复杂的颜色和偏振选择技术在科学、安全和商业成像应用中变得越来越重要。据报道,一种基于周期性孔径阵列的新型二聚体等离子体滤波器结构,通过利用薄金属膜中的异常光传输特性,为制造平面颜色选择结构提供了一种有效方法。这项工作中报道的可见波段传输模式偏振依赖型彩色滤光片仅利用了单层铝,采用六边形周期性二聚体椭圆孔径结构进行图案化。实验表明,该结构在红色、绿色和蓝色通道的最小消光比分别超过20、100和150,峰值透过率超过30%。结果表明,可以利用偏振选择性将双图像编码到单个结构中。通过对复杂艺术品的微尺度再现证明了该方法的保真度,显示出利用偏振选择性再现76%的sRGB色域的能力。该结构仅通过一步光刻和蚀刻工艺即可轻松制造,因此该技术可能会得到广泛应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d59e/12097114/b3035379a33f/ADVS-12-2501941-g004.jpg

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