Hu Chenfei, Popescu Gabriel
Opt Lett. 2017 Nov 15;42(22):4643-4646. doi: 10.1364/OL.42.004643.
Quantitative phase imaging of transparent objects in transmission allows for a direct interpretation of the results: the phase shift measured is linear in the refractive index contrast and object thickness. However, the same measurement in a backscattering geometry yields fundamentally different results, because the incident field component is absent from the detected field. As a result, the relationship between the measured phase and object properties is obscure. We derived analytical expressions for the propagating fields under the first-order Born approximation and studied the interpretation of the measured phase shifts in backscattering versus transmission geometries. Our analysis shows that the backscattering phase shift is the result of the plane wave superposition originating at various depths in the object, which makes it impossible to infer quantitative morphology or topography information of 3D transparent samples from a reflection phase image alone.
所测量的相移在折射率对比度和物体厚度方面呈线性关系。然而,在背散射几何结构中的相同测量会产生根本不同的结果,因为检测场中不存在入射场分量。因此,测量相位与物体特性之间的关系并不明确。我们推导了一阶玻恩近似下传播场的解析表达式,并研究了背散射与透射几何结构中测量相移的解读。我们的分析表明,背散射相移是源于物体不同深度处的平面波叠加的结果,这使得仅从反射相位图像无法推断三维透明样品的定量形态或形貌信息。