State Key Laboratory of Transducer Technology, Aerospace Information Research Institute, Chinese Academy of Sciences, Beijing, 100190, China.
School of Electronic, Electrical, and Communication Engineering, University of Chinese Academy of Sciences, Beijing, 100049, China.
Nat Commun. 2022 Oct 29;13(1):6475. doi: 10.1038/s41467-022-34196-7.
Optical techniques for visualization and quantification of chemical and biological analytes are always highly desirable. Here we show a hyperspectral surface plasmon resonance microscopy (HSPRM) system that uses a hyperspectral microscope to analyze the selected area of SPR image produced by a prism-based spectral SPR sensor. The HSPRM system enables monochromatic and polychromatic SPR imaging and single-pixel spectral SPR sensing, as well as two-dimensional quantification of thin films with the measured resonance-wavelength images. We performed pixel-by-pixel calibration of the incident angle to remove pixel-to-pixel differences in SPR sensitivity, and demonstrated the HSPRM's capabilities by using it to quantify monolayer graphene thickness distribution, inhomogeneous protein adsorption and single-cell adhesion. The HSPRM system has a wide spectral range from 400 nm to 1000 nm, an optional field of view from 0.884 mm to 0.003 mm and a high lateral resolution of 1.2 μm, demonstrating an innovative breakthrough in SPR sensor technology.
可视化和量化化学和生物分析物的光学技术一直是人们所期望的。在这里,我们展示了一种基于超光谱显微镜的表面等离子体共振显微镜(HSPRM)系统,该系统利用超光谱显微镜分析棱镜基光谱 SPR 传感器产生的 SPR 图像的选定区域。HSPRM 系统可实现单色和多色 SPR 成像以及单像素光谱 SPR 传感,以及通过测量的共振波长图像对薄膜进行二维定量。我们对入射角进行逐像素校准,以消除 SPR 灵敏度的像素间差异,并通过使用它来定量单层石墨烯厚度分布、不均匀蛋白质吸附和单细胞粘附,展示了 HSPRM 的功能。HSPRM 系统的光谱范围很宽,从 400nm 到 1000nm,可选视场从 0.884mm 到 0.003mm,横向分辨率高达 1.2μm,在 SPR 传感器技术方面实现了创新突破。