首页> 外文期刊>Journal of the Optical Society of America, B. Optical Physics >Broadband and polarization-independent asymmetric transmission of visible light through a three-dimensional trapezoidal metallic metasurface
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Broadband and polarization-independent asymmetric transmission of visible light through a three-dimensional trapezoidal metallic metasurface

机译:通过三维梯形金属元接口的可见光宽带和偏振非对称传输

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摘要

In modern optical applications, it has become an important need to flow light unidirectionally. An optical diode realizes this task as an electrical counterpart manipulates the flow of electrons in semiconductor materials. In this study, we show a broadband and polarization-independent optical diode-like mechanism in a metasurface configuration in the visible spectrum. The approach is passive such that the operating principle does not depend on any type of external biasing scheme. The constituted metasurface composed of a periodic type three-dimensional nanoarray of trapezoidal-shaped aluminum metal on a sapphire substrate is designed to produce the desired optical response for opposite directions of illumination. The optical transmission properties were systematically investigated using finite-difference time-domain computations. The asymmetric transmission frequency interval of the designed metasurface is associated with the Wood - Rayleigh anomaly, and the physical principle lies in the generation of the different number of higher order modes upon oppositely incident light. Our design has forward transmission of greater than 50%, backward transmission of less than 28%, and contrast ratio of greater than 3 dB in the entire visible spectrum. Specifically, a maximum forward transmission of 88% at 550 nm wavelength and a very high contrast ratio (similar to 23 dB) at a wavelength of 461 nm were obtained. It is numerically shown that the asymmetric transmission has been directly related to the appearance of high-order diffractions for only one direction excitation case. This study provides a path toward the realization of optical diodes for applications, such as optical communications and laser systems. (c) 2018 Optical Society of America
机译:在现代光学应用中,它已成为单向流动光的重要性。光学二极管实现该任务作为电气对应物操纵半导体材料中的电子流。在该研究中,我们在可见光谱中显示了在Metasurface配置中的宽带和偏振无偏光的光学二极管机构。该方法是被动的,使得操作原理不依赖于任何类型的外部偏置方案。由Sapphire衬底上的梯形铝金属的周期性三维纳米阵列组成的构成的元表面被设计为为相反的照明方向产生所需的光学响应。使用有限差分时间域计算系统地研究了光传输特性。设计的元曲面的非对称传输频率间隔与木 - 瑞利异常相关联,并且物理原理在于相对入射光时产生不同数量的高阶模式。我们的设计前锋传输大于50%,落后透射小于28%,在整个可见光谱中的比对比度大于3 dB。具体地,获得550nm波长的最大正向透射88%,并且获得在461nm的波长的波长下具有非常高的对比度(类似于23dB)。在数控上表明不对称传输直接与高阶衍射的外观直接相关,仅为一个方向激励案例。本研究提供了实现用于应用的光学二极管的路径,例如光通信和激光系统。 (c)2018年光学学会

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