Matlock Alex, Sentenac Anne, Chaumet Patrick C, Yi Ji, Tian Lei
Department of Electrical and Computer Engineering, Boston University, Boston, MA 02215, USA.
Institut Fresnel, Aix Marseille Univ., CNRS, Centrale Marseille, Marseille, France.
Biomed Opt Express. 2020 Jan 14;11(2):911-926. doi: 10.1364/BOE.380845. eCollection 2020 Feb 1.
Reflection phase imaging provides label-free, high-resolution characterization of biological samples, typically using interferometric-based techniques. Here, we investigate reflection phase microscopy from -only measurements under diverse illumination. We evaluate the forward and inverse scattering model based on the first Born approximation for imaging scattering objects above a glass slide. Under this design, the measured field combines forward-scattering and height-dependent back-scattering from the object that complicates object phase recovery. Using only the forward-scattering, we derive a linear inverse scattering model and evaluate this model's validity range in simulation and experiment using a standard reflection microscope modified with a programmable light source. Our method provides enhanced contrast of thin, weakly scattering samples that complement transmission techniques. This model provides a promising development for creating simplified intensity-based reflection quantitative phase imaging systems easily adoptable for biological research.
反射相成像通常使用基于干涉测量的技术,可对生物样本进行无标记的高分辨率表征。在此,我们研究了在不同照明条件下仅基于测量的反射相显微镜。我们基于一阶玻恩近似评估用于对载玻片上方的散射物体进行成像的正向和反向散射模型。在这种设计下,测量场结合了来自物体的前向散射和与高度相关的后向散射,这使得物体相位恢复变得复杂。仅使用前向散射,我们推导了一个线性反向散射模型,并使用配备可编程光源的标准反射显微镜在模拟和实验中评估了该模型的有效范围。我们的方法提高了薄的、弱散射样本的对比度,对透射技术起到了补充作用。该模型为创建易于应用于生物学研究的基于强度的简化反射定量相成像系统提供了有前景的发展方向。