论文标题

用反向设计的超薄光学元求解自由空间的积分方程

Solving integral equations in free-space with inverse-designed ultrathin optical metagratings

论文作者

Cordaro, Andrea, Edwards, Brian, Nikkhah, Vahid, Alù, Andrea, Engheta, Nader, Polman, Albert

论文摘要

随着标准的微电子技术方法在速度和功耗中的基本限制中,强烈需要新颖的计算策略。模拟光学计算可以以可忽略的能源成本和高速处理大量数据处理。基于这些原理,最近已经探索了超薄光学元面积,以实时处理大图像,尤其是用于边缘检测。通过合并反馈,最近还显示,可以针对模拟域中的复杂数学问题进行定制的超材料,尽管这些努力迄今已限于指导波系统和笨重的设置。在这里,我们提出了一个基于SI MetaSurface的基于SI MetaSurface计算的平台,该平台能够使用自由空间可见辐射来求解第二种的Fredholm积分方程。基于SI的巨型属性是逆设计的,以实现散射矩阵综合,以对应于感兴趣的数学问题的规定内核。接下来,将半透明的镜子合并到样品中,以提供足够的反馈,从而执行所需的neumann系列,以光速求解模拟域中的相应方程。可见的波长操作可实现高度紧凑的超薄设备,可以从自由空间中询问,这意味着高处理速度和芯片积分的可能性。

As standard microelectronic technology approaches fundamental limitations in speed and power consumption, novel computing strategies are strongly needed. Analog optical computing enables processing large amounts of data at a negligible energy cost and high speeds. Based on these principles, ultrathin optical metasurfaces have been recently explored to process large images in real-time, in particular for edge detection. By incorporating feedback, it has also been recently shown that metamaterials can be tailored to solve complex mathematical problems in the analog domain, although these efforts have so far been limited to guided-wave systems and bulky setups. Here, we present an ultrathin Si metasurface-based platform for analog computing that is able to solve Fredholm integral equations of the second kind using free-space visible radiation. A Si-based metagrating was inverse-designed to implement the scattering matrix synthesizing a prescribed Kernel corresponding to the mathematical problem of interest. Next, a semi-transparent mirror was incorporated into the sample to provide adequate feedback and thus perform the required Neumann series, solving the corresponding equation in the analog domain at the speed of light. Visible wavelength operation enables a highly compact, ultrathin device that can be interrogated from free-space, implying high processing speeds and the possibility of on-chip integration.

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