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利用非局域角度选择超表面的定量相位对比成像。

Quantitative phase contrast imaging with a nonlocal angle-selective metasurface.

机构信息

Geballe Laboratory for Advanced Materials, Stanford University, Stanford, CA, 94305, USA.

Department of Chemistry, Stanford University, Stanford, CA, 94305, USA.

出版信息

Nat Commun. 2022 Dec 21;13(1):7848. doi: 10.1038/s41467-022-34197-6.

Abstract

Phase contrast microscopy has played a central role in the development of modern biology, geology, and nanotechnology. It can visualize the structure of translucent objects that remains hidden in regular optical microscopes. The optical layout of a phase contrast microscope is based on a 4 f image processing setup and has essentially remained unchanged since its invention by Zernike in the early 1930s. Here, we propose a conceptually new approach to phase contrast imaging that harnesses the non-local optical response of a guided-mode-resonator metasurface. We highlight its benefits and demonstrate the imaging of various phase objects, including biological cells, polymeric nanostructures, and transparent metasurfaces. Our results showcase that the addition of this non-local metasurface to a conventional microscope enables quantitative phase contrast imaging with a 0.02π phase accuracy. At a high level, this work adds to the growing body of research aimed at the use of metasurfaces for analog optical computing.

摘要

相衬显微镜在现代生物学、地质学和纳米技术的发展中发挥了核心作用。它可以可视化常规光学显微镜下隐藏的半透明物体的结构。相衬显微镜的光学布局基于 4f 图像处理设置,自泽尼克(Zernike)在 20 世纪 30 年代早期发明以来,其基本结构保持不变。在这里,我们提出了一种新概念的相衬成像方法,利用导模共振超表面的非局域光学响应。我们强调了它的优势,并演示了各种相衬物体的成像,包括生物细胞、聚合物纳米结构和透明超表面。我们的结果表明,将这种非局域超表面添加到传统显微镜中,可以实现具有 0.02π 相位精度的定量相衬成像。从更高的层面来看,这项工作增加了越来越多的旨在利用超表面进行模拟光学计算的研究。

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