论文标题
高保真干涉散射显微镜的多尺度建模和分析
Multiscale Modeling and Analysis for High-fidelity Interferometric Scattering Microscopy
论文作者
论文摘要
干涉散射显微镜(ISCAT)作为一种超敏感的无荧光成像方式,最近引起了极大的关注,并从原理的演示到定量感应迅速发展。在这里,我们报告了ISCAT的一项理论和实验研究,其样品具有结构性维度为4-5个数量级的样品。特别是,我们证明并直观地解释了玻璃盖玻片和云母表面的亚纳米表面粗糙度对绝对信号的深刻作用以及金纳米颗粒的点扩散功能的形状。这些数量显着影响确定目标大小和位置在所有三个维度上的精度。此外,我们研究了模仿细胞环境中金纳米颗粒的样品系统,并显示纳米颗粒的位置依赖性甚至不对称点的扩散功能。多尺度研究将有助于在实际应用中发展高保真ISCAT。
Interferometric scattering microscopy (iSCAT), as an ultrasensitive fluorescence-free imaging modality, has recently gain enormous attention and been rapidly developing from demonstration of principle to quantitative sensing. Here we report on a theoretical and experimental study for iSCAT with samples having structural dimensions that differ by 4-5 orders of magnitude. In particular, we demonstrate and intuitively explain the profound effects of sub-nanometer surface roughness of a glass coverslip and of a mica surface on the absolute signal and the shape of the point spread function of a gold nanoparticle. These quantities significantly affect the accuracies for determining the target size and position in all three dimensions. Moreover, we investigate a sample system mimicking a gold nanoparticle in a simplified cell environment and show position-dependent and even asymmetric point spread function of the nanoparticle. The multiscale study will facilitate the development of high fidelity iSCAT in real applications.