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Coherence-Gated Sensorless Adaptive Optics Multiphoton Retinal Imaging

机译:连贯门控不可能传感器自适应光学多光子视网膜成像

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Multiphoton microscopy enables imaging deep into scattering tissues. The efficient generation of non-linear optical effects is related to both the pulse duration (typically on the order of femtoseconds) and the size of the focused spot. Aberrations introduced by refractive index inhomogeneity in the sample distort the wavefront and enlarge the focal spot, which reduces the multiphoton signal. Traditional approaches to adaptive optics wavefront correction are not effective in thick or multi-layered scattering media. In this report, we present sensorless adaptive optics (SAO) using low-coherence interferometric detection of the excitation light for depth-resolved aberration correction of two-photon excited fluorescence (TPEF) in biological tissue. We demonstrate coherence-gated SAO TPEF using a transmissive multi-actuator adaptive lens for in vivo imaging in a mouse retina. This configuration has significant potential for reducing the laser power required for adaptive optics multiphoton imaging, and for facilitating integration with existing systems.
机译:多光子显微镜使得能够深入成像散射组织。非线性光学效应的有效生成与脉冲持续时间(通常在Femtoseconds的顺序)和聚焦斑点的大小有关。样品中折射率不均匀引入的像差扭曲了波前扭曲并扩大了焦点,从而降低了多光子信号。自适应光学波前校正的传统方法在厚或多层散射介质中无效。在本报告中,我们使用低相干干涉检测的无传感器自适应光学(SAO),用于在生物组织中的双光子激发荧光(TPEF)的深度分辨的像差校正。我们展示了使用透射多致动器自适应镜头的连贯门控SAO TPEF,用于在小鼠视网膜中的体内成像。该配置具有减少自适应光学多光子成像所需的激光功率的显着潜力,并用于促进与现有系统的集成。

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