论文标题
基于MIMO超脸处理器的并行光学计算,具有不对称的光学响应
Parallel Optical Computing Based on MIMO Metasurface Processors with Asymmetric Optical Response
论文作者
论文摘要
我们提出了对极化不敏感的跨表面处理器,以对入射光束进行空间不对称滤波,从而允许实时并行光学处理。为了实现大规模的并行处理,我们引入了一种新型的多输入 - 元输出(MIMO)计算跨表面,并具有不对称的光学响应,该响应可以在两个不同的输入信号上执行空间分化,而不管它们的极化如何。在我们的情况下,在X和Y方向上设置了两个不同的信号,并平行且垂直于入射平面,同时照亮了元面处理器,并且所得的分化信号通过适当的空间低通滤波器(SLPF)彼此分开。通过利用广义板过渡条件(GSTC)和表面敏感性张量,我们设计了一种不对称的元原子增强,并在正常梁照明下以正常的敏感性触觉触及不对称的光学响应。还报道了原则模拟以及信号处理函数的成功实现。提出的跨表面克服了先前的研究所施加的主要缺点,例如由于需要其他亚构造,缓慢的响应,最重要的是,仅支持给定极化的单个输入。我们的结果为使用高效且易于制作的MIMO处理器的未来开发基于材料的模拟计算为未来的发展提供了途径,以实现紧凑,快速和可集成的计算元素,而无需任何傅立叶镜头。
We present a polarization-insensitive metasurface processor to perform spatial asymmetric filtering of an incident optical beam, thereby allowing for real-time parallel optical processing. To enable massive parallel processing, we introduce a novel Multi Input-Multi Output (MIMO) computational metasurface with an asymmetric optical response that can perform spatial differentiation on two distinct input signals regardless of their polarization. In our scenario, two distinct signals set in x and y directions, parallel and perpendicular to the incident plane, illuminate simultaneously the metasurface processor, and the resulting differentiated signals are separated from each other via appropriate Spatial Low Pass Filters (SLPF). By leveraging Generalized Sheet Transition Conditions (GSTCs) and surface susceptibility tensors, we design an asymmetric meta-atom augmented with normal susceptibilitiesto reach asymmetric optical response at normal beam illumination. Proof-of-principle simulations are also reported along with the successful realization of signal processing functions. The proposed metasurface overcomes major shortcomings imposed by previous studies such as large architectures arising from the need of additional subblocks, slow responses, and most importantly, supporting only a single input with a given polarization. Our results set the path for future developments of material-based analog computing using efficient and easy-to-fabricate MIMO processors for compact, fast, and integrable computing elements without any Fourier lens.