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A nanostructure based on metasurfaces for optical interconnects

机译:用于光互连的基于超表面的纳米结构

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Optical-electronic Integrated Neural Co-processor takes vital part in optical neural network, which is mainly realized by optical interconnects. Because of the accuracy requirement and long-term goal of integration, optical interconnects should be effective and pint-size. In traditional solutions of optical interconnects, holography built on crystalloid or law of Fresnel diffraction exploited on zone plate was used. However, holographic method cannot meet the efficiency requirement and zone plate is too bulk to make the optical neural unit miniaturization. Thus, this paper aims to find a way to replace holographic method or zone plate with enough diffraction efficiency and smaller size. Metasurfaces are composed of subwavelength-spaced phase shifters at an interface of medium. Metasurfaces allow for unprecedented control of light properties. They also have advanced optical technology of enabling versatile functionalities in a planar structure. In this paper, a nanostructure is presented for optical interconnects. The comparisons of light splitting ability and simulated crosstalk between nanostructure and zone plate are also made.
机译:光电集成神经协处理器在光学神经网络中起着至关重要的作用,它主要通过光学互连实现。由于精度要求和集成的长期目标,光互连应该有效且尺寸小巧。在传统的光学互连解决方案中,使用了基于晶体的全息术或在波带片上利用菲涅耳衍射定律。然而,全息方法不能满足效率要求,并且波带片太大而不能使光学神经单元小型化。因此,本文旨在寻找一种以足够的衍射效率和更小的尺寸替代全息方法或波带片的方法。超表面由在介质界面处的亚波长间隔移相器组成。超表面允许对光属性进行前所未有的控制。它们还具有先进的光学技术,可在平面结构中实现多种功能。在本文中,提出了用于光学互连的纳米结构。还对纳米结构和波带片的分光能力和模拟串扰进行了比较。

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