Esfahani Sedigheh, Cotrufo Michele, Alù Andrea
Photonics Initiative, Advanced Science Research Center, <a href="https://ror.org/01gdjt538">City University of New York</a>, New York, New York 10031, USA.
Physics Program, <a href="https://ror.org/01gdjt538">Graduate Center of the City University of New York</a>, New York, New York 10016, USA.
Phys Rev Lett. 2024 Aug 9;133(6):063801. doi: 10.1103/PhysRevLett.133.063801.
Analog computation with passive optical components can enhance processing speeds and reduce power consumption, recently attracting renewed interest thanks to the opportunities enabled by metasurfaces. Basic image processing tasks, such as spatial differentiation, have been recently demonstrated based on engineered nonlocalities in metasurfaces, but next-generation computational schemes require more advanced capabilities. Here, by simultaneously tailoring the nonlocal electromagnetic response of a metasurface in space and time, we demonstrate a passive ultrathin silicon-based device that performs mixed spatiotemporal differentiation of input images, realizing event-based edge detection. The metasurface performs spatial differentiation only when the input image is evolving in time, resulting in spatiotemporal image processing on subpicosecond timescales. Moreover, the metasurface design can be tailored to selectively enhance objects moving at desired speeds. Our results point towards fully passive processing of spatiotemporal signals, for highly compact neuromorphic cameras.
利用无源光学元件进行模拟计算可以提高处理速度并降低功耗,由于超表面带来的机遇,近来它重新引起了人们的关注。诸如空间微分等基本图像处理任务,近来已基于超表面中经过设计的非局域性得到了演示,但下一代计算方案需要更先进的能力。在此,通过同时在空间和时间上定制超表面的非局域电磁响应,我们展示了一种基于超薄硅的无源器件,它能对输入图像进行混合时空微分,实现基于事件的边缘检测。该超表面仅在输入图像随时间变化时进行空间微分,从而在亚皮秒时间尺度上实现时空图像处理。此外,超表面设计可以进行定制,以选择性地增强以所需速度移动的物体。我们的结果指向用于高度紧凑的神经形态相机的时空信号的全无源处理。