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Measurement and design of refractive corrections using ultrafast laser-induced intra-tissue refractive index shaping in live cats

机译:使用超快激光诱导的活猫组织内折射率整形进行屈光矫正的测量和设计

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Intra-Tissue Refractive Index Shaping (IRIS) uses a 405 nm femtosecond laser focused into the stromal region of the cornea to induce a local refractive index change through multiphoton absorption. This refractive index change can be tailored through scanning of the focal region and variations in laser power to create refractive structures, such as gradient index lenses for visual refractive correction. Previously, IRJS was used to create 2.5 mm wide, square, -1 D cylindrical refractive structures in living cats. In the present work, we first wrote 400 μm wide bars of refractive index change at varying powers in enucleated cat globes using a custom flexure-based scanning system. The cornea and surrounding sclera were then removed and mounted into a wet cell. The induced optical phase change was measured with a Mach-Zehnder Interferometer (MZI), and appeared as fringe displacement, whose magnitude was proportional to the refractive index change. The interferograms produced by the MZI were analyzed with a Fourier Transform based algorithm in order to extract the phase change. This provided a phase change versus laser power calibration, which was then used to design the scanning and laser power distribution required to create -1.5 D cylindrical Fresnel lenses in cat cornea covering an area 6 mm in diameter. This prescription was inscribed into the corneas of one eye each of two living cats, under surgical anesthesia. It was then verified in vivo by contrasting wavefront aberration measurements collected pre-IRIS with those obtained over six months post-IRIS using a Shack-Hartmann wavefront sensor.
机译:组织内折射率整形(IRIS)使用405 nm飞秒激光聚焦到角膜的基质区域,通过多光子吸收引起局部折射率变化。可以通过扫描焦点区域和改变激光功率以产生折射率结构(例如用于视觉屈光校正的梯度折射率透镜)来调整此折射率变化。以前,IRJS用于在活猫中创建2.5毫米宽,正方形,-1 D的圆柱形折射结构。在当前的工作中,我们首先使用定制的基于挠曲的扫描系统,在去电的猫眼球中以不同的屈光度写出了400μm宽的折射率变化条。然后去除角膜和周围的巩膜并将其安装在湿细胞中。用马赫曾德尔干涉仪(MZI)测量了诱导的光学相变,并显示为条纹位移,其大小与折射率变化成比例。 MZI产生的干涉图使用基于傅立叶变换的算法进行分析,以提取相位变化。这提供了相变对激光功率校准,然后用于设计在猫角膜中创建-1.5 D圆柱形菲涅耳透镜所需的扫描和激光功率分布,该角膜覆盖直径为6 mm的区域。在手术麻醉下,将该处方记入两只活猫的一只眼睛的角膜中。然后,通过使用Shack-Hartmann波前传感器将在IRIS之前收集的波前像差测量结果与在IRIS后六个月内获得的测量结果进行对比,从而在体内进行了验证。

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