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Giant birefringence in optical antenna arrays with widely tailorable optical anisotropy

机译:具有广泛可定制的光学各向异性的光学天线阵列中的超双折射

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摘要

The manipulation of light by conventional optical components such as lenses, prisms, and waveplates involves engineering of the wavefront as it propagates through an optically thick medium. A unique class of flat optical components with high functionality can be designed by introducing abrupt phase shifts into the optical path, utilizing the resonant response of arrays of scatterers with deeply subwavelength thickness. As an application of this concept, we report a theoretical and experimental study of birefringent arrays of two-dimensional (V- and Y-shaped) optical antennas which support two orthogonal charge-oscillation modes and serve as broadband, anisotropic optical elements that can be used to locally tailor the amplitude, phase, and polarization of light. The degree of optical anisotropy can be designed by controlling the interference between the waves scattered by the antenna modes; in particular, we observe a striking effect in which the anisotropy disappears as a result of destructive interference. These properties are captured by a simple, physical model in which the antenna modes are treated as independent, orthogonally oriented harmonic oscillators.
机译:通过常规的光学组件(如透镜,棱镜和波片)对光的操纵涉及波前的传播,因为波前传播通过了光学上较厚的介质。利用具有深亚波长厚度的散射体阵列的共振响应,可以通过将突然的相移引入光路来设计具有高功能性的独特类型的平面光学组件。作为此概念的应用,我们报告了二维(V和Y形)光天线双折射阵列的理论和实验研究,该天线支持两种正交的电荷振荡模式,并且可以用作宽带,各向异性光学元件。用于局部调整光的振幅,相位和偏振。可以通过控制天线模式散射的波之间的干扰来设计光学各向异性的程度;尤其是,我们观察到了一种惊人的效果,其中各向异性是由于相消干涉而消失的。这些特性通过简单的物理模型捕获,其中天线模式被视为独立的,正交取向的谐波振荡器。

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