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Coupling of energy into the fundamental diffusion mode of a complex nanophotonic medium

机译:能量耦合到复杂纳米光子介质的基本扩散模式

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We demonstrate experimentally that optical wavefront shaping increases light coupling into the fundamental diffusion mode of a scattering medium. The total energy density inside a scattering medium of zinc oxide nanoparticles was probed by exciting fluorescent spheres that were randomly positioned in the medium and collecting the fluorescent power. We optimized the incident wavefront to obtain a bright focus at the back surface of the sample and found that the concomitant fluorescent power is enhanced compared to a non-optimized incident wavefront. The observed enhancement increases with sample thickness. Based on diffusion theory, we derive a model wherein the distribution of the energy density of wavefront-shaped light is dominated by the fundamental diffusion mode. Our model agrees remarkably well with our experiments, notably since the model has no freely adjustable parameters.
机译:我们通过实验证明,光波阵面成形可增加将光耦合到散射介质的基本扩散模式中。通过激发荧光球探测氧化锌纳米粒子散射介质内部的总能量密度,该球随机放置在介质中并收集荧光功率。我们优化了入射波前以在样品的背面获得明亮的聚焦,并发现与未优化的入射波前相比,伴随的荧光功率得到了增强。观察到的增强随着样品厚度的增加而增加。基于扩散理论,我们得出了一个模型,其中波前形光的能量密度分布由基本扩散模式决定。我们的模型与我们的实验非常吻合,特别是因为该模型没有可自由调节的参数。

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