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Adaptive optics applied to coherent anti-Stokes Raman scattering microscopy

机译:自适应光学应用于连贯的反斯托克斯拉曼散射显微镜

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We report on the use of adaptive optics in coherent anti-Stokes Raman scattering microscopy (CARS) to improve the image brightness and quality at increased optical penetration depths in biological material. The principle of the technique is to shape the incoming wavefront in such a way that it counteracts the aberrations introduced by imperfect optics and the varying refractive index of the sample. In recent years adaptive optics have been implemented in multiphoton and confocal microscopy. CARS microscopy is proving to be a powerful tool for non-invasive and label-free biomedical imaging with vibrational contrast. As the contrast mechanism is based on a 3rd order non-linear optical process, it is highly susceptible to aberrations, thus CARS signals are commonly lost beyond the depth of~100 μm in tissue. We demonstrate the combination of adaptive optics and CARS microscopy for deep-tissue imaging using a deformable membrane mirror. A random search optimization algorithm using the CARS intensity as the figure of merit determined the correct mirror-shape in order to correct for the aberrations. We highlight two different methods of implementation, using a look up table technique and by performing the optimizing in situ. We demonstrate a significant increase in brightness and image quality in an agarose/polystyrene-bead sample and white chicken muscle, pushing the penetration depth beyond 200 μm.
机译:我们报告使用自适应光学在连贯的防斯托克斯拉曼散射显微镜(汽车)中的使用,以改善生物材料中增加光学穿透深度的图像亮度和质量。该技术的原理是以这种方式塑造进入的波前,使得它抵消了由不完美光学的不完全光学和样品的变化折射率引入的像差。近年来,在多光子和共聚焦显微镜中已经实施了自适应光学器件。汽车显微镜证明是一种强大的无侵入性和无标签生物医学成像的强大工具,具有振动对比。随着对比机制基于3rd阶非线性光学过程,它高度易受像差的影响,因此汽车信号通常丢失超过组织中〜100μm的深度。我们展示了使用可变形膜镜进行深层组织成像的自适应光学和汽车显微镜的组合。随机搜索优化算法使用汽车强度作为优点的图确定正确的镜形式,以便校正像差。我们使用查找表技术突出显示两种不同的实施方法,并通过以原位进行优化。我们证明了琼脂糖/聚苯乙烯 - 珠子样品和白鸡肉肌肉中的亮度和图像质量显着增加,推动了超过200μm的穿透深度。

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