Ossowski Paweł, Wojtkowski Maciej, Munro Peter Rt
Institute of Physics, Faculty of Physics, Astronomy and Informatics, Nicolaus Copernicus University Grudziadzka 5, 87-100 Torun, Poland.
These authors contributed equally to this work.
Biomed Opt Express. 2017 Jul 10;8(8):3606-3626. doi: 10.1364/BOE.8.003606. eCollection 2017 Aug 1.
We report on the development of a technique for differentiating between biological micro-objects using a rigorous, full-wave model of OCT image formation. We model an existing experimental prototype which uses OCT to interrogate a microfluidic chip containing the blood cells. A full-wave model is required since the technique uses light back-scattered by a scattering substrate, rather than by the cells directly. The light back-scattered by the substrate is perturbed upon propagation through the cells, which flow between the substrate and imaging system's objective lens. We present the key elements of the 3D, Maxwell equation-based computational model, the key findings of the computational study and a comparison with experimental results.
我们报告了一种利用严格的光学相干断层扫描(OCT)图像形成全波模型来区分生物微物体的技术的发展情况。我们对一个现有的实验原型进行建模,该原型使用OCT来检测一个包含血细胞的微流控芯片。由于该技术使用的是由散射基质背向散射的光,而不是直接由细胞背向散射的光,所以需要一个全波模型。基质背向散射的光在通过细胞传播时会受到干扰,细胞在基质和成像系统的物镜之间流动。我们展示了基于麦克斯韦方程的三维计算模型的关键要素、计算研究的关键发现以及与实验结果的比较。