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High-Efficiency Asymmetric Transmission of Circularly Polarized THz waves using a Dielectric Herringbone Metasurface

机译:利用介质人字形超曲面进行圆极化THz波的高效非对称透射

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摘要

An interesting topic is that of metamaterials imparting chiral responses which invoke a disparity between opposite handednesses of circularly polarised (CP) light. Most chiral metamaterials are either 3D-helical structures [1] or stacked metallic structures with twisted orientations [2]. These structures allow selective transmission of one CP whilst prohibiting or reflecting the other, termed Circular Dichroism. However, for 2D chiral metamaterials, this is not so. Instead, the cross-polarisation conversion of one CP to another is different. The original work in [3] used an anisotropic lossy planar-chiral “fish-scale” structure to exhibit this effect, termed Asymmetric Transmission (AT). However, these responses are small with efficiencies less than 25%. Works to improve efficiency used 3D arrangements. Work in [4] achieved much higher efficiency than for the 2D planar-chiral structures, but due to the metallic construction absorption losses were unavoidable; such losses were given as 37%.ududHere, we propose a means of achieving AT using a loss-free mechanism at 1THz frequency by constructing Monolithic Herringbone metamaterials from a dielectric medium [5]. This device works by a spin-selective interference of CP light, due to Pancharatnam-Berry (PB) phases, in conjunction with a propagative dynamic phase (Fig. 2) causing constructive interference for TRL and destructive for TLR Jones matrix components. An analytical derivation (Fig. 1a) was found to agree well with numerical simulations (Fig. 1b) for the design. These results indicate a conversion efficiency of LCP to RCP (TRL) exceeding 80%. Fabrication of Intrinsic Silicon was used for the devices (Fig. 2) and THz Time Domain Spectroscopy (THz-TDS) was used to characterise the samples, showing a 60% spin-conversion efficiency (Fig. 3). Such a device is robust and is not easily degraded by errors in fabrication.
机译:一个有趣的话题是赋予手性响应的超材料,它引起圆偏振(CP)光的相反手性之间的差异。大多数手性超材料是3D螺旋结构[1]或具有扭曲方向的堆叠金属结构[2]。这些结构允许选择性传播一个CP,同时禁止或反射另一个CP,称为圆二色性。但是,对于2D手性超材料,情况并非如此。相反,一个CP到另一CP的交叉极化转换是不同的。文献[3]中的原始工作使用各向异性有损的平面手性“鱼鳞”结构来表现这种效应,称为不对称透射(AT)。但是,这些响应很小,效率不到25%。致力于提高使用3D布置的效率。文献[4]中的工作取得了比二维平面手性结构更高的效率,但是由于金属结构的缘故,吸收损失是不可避免的。这样的损耗以37%给出。 ud ud此处,我们提出了一种通过从介电介质构造单片人字形超材料来使用1THz频率的无损耗机制来实现AT的方法。由于Pancharatnam-Berry(PB)相位,该设备通过CP光的自旋选择性干涉与传播的动态相位(图2)结合使用,对TRL造成相长干涉,并对TLR Jones矩阵分量造成破坏。发现分析推导(图1a)与设计的数值模拟(图1b)非常吻合。这些结果表明,LCP到RCP(TRL)的转换效率超过80%。器件使用本征硅制造(图2),并使用THz时域光谱法(THz-TDS)表征样品,显示出60%的自旋转换效率(图3)。这样的设备是坚固的并且不容易由于制造错误而退化。

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