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Polarization-insensitive broadband visible-light steering with tunable direction enabled by scalable plasmonics meta-gratings

机译:偏振不敏感宽带可见光转向,可通过可伸缩的叠态元光栅实现可调谐方向

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As an emerging field in the discipline of optics, plasmonics and metasurfaces have been demonstrated to enable a new degree of freedom to manipulate light for arbitrary beam steering, spectral splitting as well as precise wavefront shaping. However, it has been mostly studied in parallel with the field of diffractive optics, and awaits the unveiling of how the hybridizations between plasmonic effect and diffraction effect interact and impact. Here, we have theoretically proposed a new type of polarization-insensitive meta-grating structure across the broadband visible regime. The structure design combines the width gradient (critical resonant length) from a trapezoid-nanoantenna with the height gradient from a blazed grating profile. The hybridized meta-grating creates both plasmonic effect and grating effect, which enables all the optical incident photons to be directed to the same orientation regardless of the light polarization. As we know, both metasurfaces and diffractive optical elements (such as gratings) are, more often than not, quite sensitive to the incident light polarization. Moreover, if placing our meta-grating on a flexible/stretchable substrate (such as polydimethylsiloxane), the outgoing angle can be effectively adjusted by tuning the period or density of meta-grating arrays. Such meta-grating architectures can be potentially manufactured by existing photolithography and nanoimprint techniques, and can easily find a wide range of practical polarization-insensitive applications, including broadband deflector and emitter, tunable display and imaging device, high signal-to-noise ratio spectrometer, polarization-insensitive plasmonic coupler, etc.
机译:作为光学学科中的一个新兴领域,等离子体激元和超表面已经被证明能够实现一种新的自由度来操纵光,实现任意光束控制、光谱分裂以及精确的波前整形。然而,人们对它的研究大多与衍射光学领域并行,并等待着揭示等离子体效应和衍射效应之间的杂交是如何相互作用和影响的。在这里,我们从理论上提出了一种新型的宽带可见光偏振不敏感元光栅结构。该结构设计将梯形纳米天线的宽度梯度(临界共振长度)与闪耀光栅轮廓的高度梯度相结合。杂交元光栅产生等离子体效应和光栅效应,使所有光学入射光子都指向同一方向,而不管光的偏振。正如我们所知,亚表面和衍射光学元件(如光栅)通常对入射光偏振非常敏感。此外,如果将我们的元光栅放置在柔性/可拉伸基板(如聚二甲基硅氧烷)上,则可以通过调整元光栅阵列的周期或密度来有效调整出射角。这种元光栅结构可以通过现有的光刻和纳米压印技术潜在地制造,并且可以很容易地找到广泛的实际偏振不敏感应用,包括宽带偏转器和发射器、可调谐显示和成像器件、高信噪比光谱仪、偏振不敏感等离子体耦合器等。

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