论文标题
干涉散射显微镜(ISCAT)中的点扩散功能。 I.散热和轴向定位中的畸变
The point spread function in interferometric scattering microscopy (iSCAT). I. Aberrations in defocusing and axial localization
论文作者
论文摘要
干涉散射(ISCAT)显微镜是一种针对敏感检测纳米膜的新兴标签技术。先前的ISCAT研究通过高斯强度分布近似ISCAT的点扩散函数。但是,最近在挑战性的斑点环境中跟踪纳米颗粒的迁移率和过度扩展的轴向范围的努力已经需要对干涉点扩散函数(IPSF)进行定量描述。我们为IPSF提供了与实验测量和严格的FDTD模拟同时的稳健矢量衍射模型。我们在各种成像场景下检查IPSF,以了解由于实验配置而导致的畸变如何编码有关纳米颗粒的信息。我们表明,IPSF的横向形状可用于通过适合分析模型或无校准的无耐心机器学习的方式,在10 $ \,μ$ m的范围内实现纳米三维定位。我们的结果对复杂散射介质中的三维单个粒子跟踪具有直接的影响。
Interferometric scattering (iSCAT) microscopy is an emerging label-free technique optimized for the sensitive detection of nano-matter. Previous iSCAT studies have approximated the point spread function in iSCAT by a Gaussian intensity distribution. However, recent efforts to track the mobility of nanoparticles in challenging speckle environments and over extended axial ranges has necessitated a quantitative description of the interferometric point spread function (iPSF). We present a robust vectorial diffraction model for the iPSF in tandem with experimental measurements and rigorous FDTD simulations. We examine the iPSF under various imaging scenarios to understand how aberrations due to the experimental configuration encode information about the nanoparticle. We show that the lateral shape of the iPSF can be used to achieve nanometric three-dimensional localization over an extended axial range on the order of 10$\,μ$m either by means of a fit to an analytical model or calibration-free unsupervised machine learning. Our results have immediate implications for three-dimensional single particle tracking in complex scattering media.