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Numerical modeling of light propagation in biological tissues: time-resolved 3D simulations based on light diffusion model and FDTD solution of Maxwell’s equations

机译:生物组织中光传播的数值模型:基于光扩散模型和Maxwell方程的FDTD解的时间分辨3D模拟

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摘要

In this work, optical propagation through turbid media is analyzed by FDTD simulation. In particular, the method is applied to biological tissues. Continuous light propagation in turbid media has been widely studied, but pulsed light propagation has received less interest due to its complexity. Therefore, in this work we focus on pulsed light. FDTD method is applied to several media with optical parameters in the typical range of those observed in biological tissues. We perform an analysis of the variations of pulsed light propagation as a function of the scatterers characteristics (namely size, concentration, and optical contrast). The results are compared with those obtained by the use of the diffusion approximation. The potential of the FDTD method over the diffusion model is given by its high accuracy, its capacity to perform time-resolved simulations, and the fact that it carries all the information about the phase and coherence of the wavefront. The results of this work can be applied to a wide range of areas of interest like the timeresolved study of ultrashort light pulses propagation, the optimization of optical penetration depth, the coherence properties of pulsed light, and the effect of modified wavefronts in light propagation.
机译:在这项工作中,通过FDTD模拟分析了通过混浊介质的光传播。特别地,该方法被应用于生物组织。在混浊介质中连续光传播已得到广泛研究,但由于其复杂性,脉冲光传播受到的关注较少。因此,在这项工作中,我们将重点放在脉冲光上。 FDTD方法应用于光学参数在生物组织中观察到的典型范围内的几种介质。我们对脉冲光传播随散射体特性(即大小,浓度和光学对比度)的变化进行分析。将结果与使用扩散近似获得的结果进行比较。 FDTD方法在扩散模型上的潜力在于它的高精度,执行时间分辨仿真的能力以及它携带有关波前相位和相干性的所有信息的事实。这项工作的结果可以应用于广泛的关注领域,例如超短光脉冲传播的时间分辨研究,光学穿透深度的优化,脉冲光的相干特性以及修饰的波前对光传播的影响。

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