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Plasmon-induced light concentration enhanced imaging visibility as observed by a composite-field microscopy imaging system

机译:复合场显微镜成像系统观察到的等离激元诱导的光浓度增强了成像可见度

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The plasmon-induced light concentration (PILC) effect, which has been supposed to be responsible for lots of linear and nonlinear enhanced optical signals such as Raman and high-harmonic generation, is hard to directly observe. Herein, we developed a scattered light based composite-field microscopy imaging (iCFM) system by coupling the oblique and vertical illumination modes, which were adopted in dark- and bright-field microscopy imaging systems, respectively, and through which iCFM system monochromatic background (MCB) images are available, to directly observe the PILC effect in far-field scattering microscopy imaging. Owing to the PILC effect, the scattering signal gain of plasmonic nanoparticles was found to be larger than that of the background, and the imaging visibility of plasmonic nanoparticles was improved by 2.4-fold for silver nanoparticles (AgNPs) and 1.6-fold for gold nanorods (AuNRs). Successful observation of the PILC effect visually together with application in enhanced visibility in cancer cell imaging by this composite illumination system might open an exciting prospect of light scattering microscopy imaging techniques with largely increased visibility.
机译:很难直接观察到等离子体激元诱导的光集中(PILC)效应,该效应是造成许多线性和非线性增强光信号(如拉曼光谱和高谐波产生)的原因。本文中,我们通过结合倾斜和垂直照明模式开发了基于散射光的复合场显微成像(iCFM)系统,该模式分别在暗场和明场显微成像系统中采用,并且iCFM系统通过该模式实现单色背景(可以使用MCB)图像直接在远场散射显微镜成像中观察PILC效果。由于PILC效应,发现等离子体纳米颗粒的散射信号增益大于背景,并且等离子体纳米颗粒的成像可见度对于银纳米颗粒(AgNPs)提高了2.4倍,对于金纳米棒提高了1.6倍。 (AuNRs)。通过这种复合照明系统,可以在视觉上成功观察到PILC效应,并将其应用于增强癌细胞成像的可见性中,这可能会为可见光散射显微镜成像技术的可见性开辟一个令人振奋的前景。

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