论文标题

通过波前塑形的散射介质,可重新配置的光学逻辑操作

Reconfigurable optical logic operations through scattering media with wavefront shaping

论文作者

Yu, Zhipeng, Song, Yuchen, Zhong, Tianting, Li, Huanhao, Zheng, Wei, Lai, Puxiang

论文摘要

光学逻辑门是光学计算的基本块,以加速信息处理。尽管近年来已经取得了重大进展,但现有的实现通常依赖于预先设计的专用结构来准确地调节光束的相位和强度,以便针对特定的逻辑函数。因此,这些光门通常缺乏可重构性,并且在动态复杂的媒体/环境(例如雾和浑浊的水)内或通过动态的复杂媒体/环境中无能力。在这项工作中,作为概念演示,我们通过基于传输矩阵的波前形状散射介质提出了可重构的光学逻辑操作。光束由空间光调节器分为几个子区域,以逻辑单元的功能反映出,每个区域都通过基于传输矩阵的波前形状显示了预定的波前。每个调制的波前通过散射介质传输,形成所需的光场。这些光场的干扰在预分配的位置产生明亮的光学焦点,代表不同的逻辑状态。作为概念证明,我们在实验上展示了五个基本逻辑函数(以及,或者,不是NAND,NOR)。由于可以立即测量散射介质/系统的传输矩阵以适应环境扰动,因此该方法(如果进一步设计)为在动态复杂的环境中打开了可重构光学逻辑计算的新场所。

Optical logic gates are fundamental blocks of optical computing to accelerate information processing. While significant progress has been achieved in recent years, existing implementations typically rely on dedicated structures that are predesigned to modulate the phases and intensities of optical beams accurately for specific logic functions. Thus, these optical gates usually lack reconfigurability and are incapable within or through dynamic complex media/environment, such as fog and turbid water. In this work, as a conceptual demonstration, we propose reconfigurable optical logic operations through scattering media with transmission matrix-based wavefront shaping. A light beam is reflected by a spatial light modulator divided into several subregions functioning as logic units, with each displayed with predetermined wavefronts via transmission matrix-based wavefront shaping. Each modulated wavefront transmits through the scattering medium to form a desired light field. The interference of these light fields generates bright optical focus at pre-assigned locations, representing different logic states. As a proof of concept, we experimentally demonstrate five basic logic functions (AND, OR, NOT, NAND, NOR). As the transmission matrix of the scattering medium/system can be measured instantly to adapt to environment perturbation, the method, if further engineered, opens new venues towards reconfigurable optical logic computing in a dynamically complex environment.

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