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Electric field Monte Carlo simulations of focal field distributions produced by tightly focused laser beams in tissues

机译:电场在组织中由紧密聚焦的激光束产生的聚焦场分布的蒙特卡罗模拟

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The focal field distribution of tightly focused laser beams in turbid media is sensitive to optical scattering and therefore of direct relevance to image quality in confocal and nonlinear microscopy. A model that considers both the influence of scattering and diffraction on the amplitude and phase of the electric field in focused beam geometries is required to describe these distorted focal fields. We combine an electric field Monte Carlo approach that simulates the electric field propagation in turbid media with an angular-spectrum representation of diffraction theory to analyze the effect of tissue scattering properties on the focal field. In particular, we examine the impact of variations in the scattering coefficient (μs), single-scattering anisotropy (g), of the turbid medium and the numerical aperture of the focusing lens on the focal volume at various depths. The model predicts a scattering-induced broadening, amplitude loss, and depolarization of the focal field that corroborates experimental results. We find that both the width and the amplitude of the focal field are dictated primarily by μs with little influence from g. In addition, our model confirms that the depolarization rate is small compared to the amplitude loss of the tightly focused field.
机译:在混浊介质中紧密聚焦的激光束的焦点分布对光散射敏感,因此与共焦和非线性显微镜中的图像质量直接相关。需要一个考虑散射和衍射对聚焦束几何形状中电场幅度和相位的影响的模型来描述这些扭曲的聚焦场。我们将模拟电场在浑浊介质中传播的电场蒙特卡罗方法与衍射理论的角谱表示法相结合,以分析组织散射特性对焦点场的影响。特别是,我们研究了在不同深度下,浑浊介质的散射系数(μs),单散射各向异性(g),聚焦透镜的数值孔径的变化对焦距的影响。该模型预测了散射引起的聚焦场变宽,振幅损失和去极化,从而证实了实验结果。我们发现,聚焦场的宽度和幅度均主要由μs决定,而g的影响很小。此外,我们的模型证实,与紧聚焦场的振幅损耗相比,去极化率小。

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