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Sub-Nyquist sampling boosts targeted light transport through opaque scattering media

机译:亚奈奎斯特采样增强了通过不透明散射介质的目标光传输

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摘要

Optical time-reversal techniques are being actively developed to focus light through or inside opaque scattering media. When applied to biological tissue, these techniques promise to revolutionize biophotonics by enabling deep-tissue non-invasive optical imaging, optogenetics, optical tweezing, and phototherapy. In all previous optical time-reversal experiments, the scattered light field was well-sampled during wavefront measurement and wavefront reconstruction, following the Nyquist sampling criterion. Here, we overturn this conventional practice by demonstrating that even when the scattered field is under-sampled, light can still be focused through or inside scattering media. Even more surprisingly, we show both theoretically and experimentally that the focus achieved by under-sampling can be one order of magnitude brighter than that achieved under the well-sampling conditions used in previous works, where 3×3 to 5×5 pixels were used to sample one speckle grain on average. Moreover, sub-Nyquist sampling improves the signal-to-noise ratio and the collection efficiency of the scattered light. We anticipate that this newly explored under-sampling scheme will transform the understanding of optical time reversal and boost the performance of optical imaging, manipulation, and communication through opaque scattering media.
机译:光学时间反转技术正在积极开发中,以将光线聚焦在不透明的散射介质内部或内部。当应用于生物组织时,这些技术有望通过实现深组织非侵入式光学成像,光遗传学,光学镊子和光疗而彻底改变生物光子学。在所有先前的光学时间反转实验中,遵循Nyquist采样准则,在波阵面测量和波阵面重建期间对散射光场进行了很好的采样。在这里,我们通过证明即使散射场采样不足,光仍然可以通过散射介质或在散射介质内部聚焦,从而推翻了这种常规做法。更令人惊讶的是,无论从理论上还是实验上,我们都表明欠采样所获得的焦点比以前使用3×3至5×5像素的良好采样条件下所获得的焦点要亮一个数量级。平均采样一个斑点颗粒。而且,亚奈奎斯特采样提高了信噪比和散射光的收集效率。我们预计,这种新近探索的欠采样方案将转变对光学时间反转的理解,并通过不透明的散射介质提高光学成像,操纵和通信的性能。

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