Thendiyammal Abhilash, Osnabrugge Gerwin, Knop Tom, Vellekoop Ivo M
Opt Lett. 2020 Sep 15;45(18):5101-5104. doi: 10.1364/OL.400985.
Wavefront shaping is increasingly being used in modern microscopy to obtain high-resolution images deep inside inhomogeneous media. Wavefront shaping methods typically rely on the presence of a "guide star" to find the optimal wavefront to mitigate the scattering of light. However, the use of guide stars poses severe limitations. Notably, only objects in the close vicinity of the guide star can be imaged. Here, we introduce a guide-star-free wavefront shaping method in which the optimal wavefront is computed using a digital model of the sample. The refractive index model of the sample, that serves as the input for the computation, is constructed in situ by the microscope itself. In a proof of principle imaging experiment, we demonstrate a large improvement in the two-photon fluorescence signal through a diffuse medium, outperforming state-of-the-art wavefront shaping by a factor of two in imaging depth.
波前整形在现代显微镜技术中越来越多地被用于在非均匀介质内部深处获取高分辨率图像。波前整形方法通常依赖于“导星”的存在来找到最佳波前来减轻光的散射。然而,导星的使用存在严重局限性。值得注意的是,只有在导星附近的物体才能被成像。在此,我们介绍一种无导星波前整形方法,其中最佳波前是使用样品的数字模型计算得出的。作为计算输入的样品折射率模型由显微镜自身原位构建。在原理验证成像实验中,我们展示了通过漫射介质的双光子荧光信号有大幅改善,在成像深度方面比最先进的波前整形技术高出两倍。