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用于可重构非易失性图像处理的非局域相变超光学

Nonlocal phase-change metaoptics for reconfigurable nonvolatile image processing.

作者信息

Yang Guoce, Wang Mengyun, Lee June Sang, Farmakidis Nikolaos, Shields Joe, Ruiz de Galarreta Carlota, Kendall Stuart, Bertolotti Jacopo, Moskalenko Andriy, Huang Kairan, Alù Andrea, Wright C David, Bhaskaran Harish

机构信息

Department of Materials, University of Oxford, Parks Road, Oxford, OX1 3PH, UK.

Centre for Metamaterial Research and Innovation, University of Exeter, Exeter, EX4 4QF, UK.

出版信息

Light Sci Appl. 2025 May 6;14(1):182. doi: 10.1038/s41377-025-01841-x.

Abstract

The next generation of smart imaging and vision systems will require compact and tunable optical computing hardware to perform high-speed and low-power image processing. These requirements are driving the development of computing metasurfaces to realize efficient front-end analog optical pre-processors, especially for edge detection capability. Yet, there is still a lack of reconfigurable or programmable schemes, which may drastically enhance the impact of these devices at the system level. Here, we propose and experimentally demonstrate a reconfigurable flat optical image processor using low-loss phase-change nonlocal metasurfaces. The metasurface is configured to realize different transfer functions in spatial frequency space, when transitioning the phase-change material between its amorphous and crystalline phases. This enables edge detection and bright field imaging modes on the same device. The metasurface is compatible with a large numerical aperture of ~0.5, making it suitable for high resolution coherent optical imaging microscopy. The concept of phase-change reconfigurable nonlocal metasurfaces may enable emerging applications of artificial intelligence-assisted imaging and vision devices with switchable multitasking.

摘要

下一代智能成像和视觉系统将需要紧凑且可调谐的光学计算硬件来执行高速、低功耗的图像处理。这些需求推动了计算超表面的发展,以实现高效的前端模拟光学预处理器,尤其是具备边缘检测能力的预处理器。然而,目前仍然缺乏可重构或可编程方案,而这些方案可能会在系统层面大幅增强这些器件的影响力。在此,我们提出并通过实验证明了一种使用低损耗相变非局域超表面的可重构平面光学图像处理器。当相变材料在非晶相和晶相之间转变时,该超表面被配置为在空间频率空间中实现不同的传递函数。这使得同一器件能够实现边缘检测和明场成像模式。该超表面与约0.5的大数值孔径兼容,使其适用于高分辨率相干光学成像显微镜。相变可重构非局域超表面的概念可能会推动具有可切换多任务功能的人工智能辅助成像和视觉设备的新兴应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3de2/12053629/62dc90aadc1b/41377_2025_1841_Fig1_HTML.jpg

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