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Asymmetric Nanoantennas for Ultrahigh Angle Broadband Visible Light Bending

机译:用于超高频宽带可见光弯曲的不对称纳米环

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Wavefront manipulation in metasurfaces typically relies on phase mapping with a finite number of elements. In particular, a discretized linear phase profile may be used to obtain a beam bending functionality. However, discretization limits the applicability of this approach for high angle bending due to the drastic efficiency drop when the phase is mapped by a small number of elements. In this work, we discuss a novel concept for energy redistribution in diffraction gratings and its application in the visible spectrum range, which helps overcome the constraints of ultrahigh angle (above 80 degrees) beam bending. Arranging asymmetric dielectric nanoantennas into diffractive gratings, we show that one can efficiently redistribute the power between the grating orders at will. This is achieved by precise engineering of the scattering pattern of the nanoantennas. The concept is numerically and experimentally demonstrated at visible frequencies using several designs of TiO2 (titanium dioxide) nanoantennas for medium (similar to 55 degrees) and high (similar to 80 degrees) angle light bending. Results show efficient broadband visible-light operation (blue and green range) of transmissive devices, reaching efficiencies of similar to 90% and 50%, respectively, at the optimized wavelength. The presented design concept is general and can be applied for both transmission and reflection operation at any desired wavelength and polarization.
机译:Metasurfaces中的波前操作通常依赖于具有有限数量元素的相位映射。特别地,可以使用离散的线性相位分布来获得光束弯曲功能。然而,离散化限制了这种方法对高角度弯曲的适用性由于当通过少量元素映射相位时,由于阶段绘制的巨大效率下降。在这项工作中,我们讨论了一种新的能量再分配的衍射光栅和其应用在可见光谱范围内的新概念,这有助于克服超高角度(高于80度)束弯曲的约束。将不对称的介电纳米纳瓦纳入衍射光栅,我们表明,人们可以有效地重新分配光栅订单之间的功率。这是通过纳米环散射模式的精确工程来实现的。该概念在数字和实验上以使用TiO 2(二氧化钛)纳米环的可见频率进行了实验,用于介质(类似于55度)和高(类似于80度)角光弯曲。结果显示透射装置的高效宽带可见光操作(蓝色和绿色范围),分别在优化波长下达到90%和50%的效率。所呈现的设计概念是通用的,并且可以应用于任何所需波长和极化的传输和反射操作。

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