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First-order design of off-axis reflective ophthalmic adaptive optics systems using afocal telescopes

机译:使用共焦望远镜的离轴反射式眼科自适应光学系统的一阶设计

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Scanning laser ophthalmoscopes (SLOs) and optical coherence tomographs are the state-of-the-art retinal imaging instruments, and are essential for early and reliable diagnosis of eye disease. Recently, with the incorporation of adaptive optics (AO), these instruments have started to deliver near diffraction-limited performance in both humans and animal models, enabling the resolution of the retinal ganglion cell bodies, their processes, the cone photoreceptor and the retinal pigment epithelial cells mosaics. Unfortunately, these novel instruments have not delivered consistent performance across human subjects and animal models. One of the limitations of current instruments is the astigmatism in the pupil and imaging planes, which degrades image quality, by preventing the wavefront sensor from measuring aberrations with high spatial content. This astigmatism is introduced by the sequence of off-axis reflective elements, typically spherical mirrors, used for relaying pupil and imaging planes. Expressions for minimal astigmatism on the image and pupil planes in off-axis reflective afocal telescopes formed by pairs of spherical mirrors are presented. The formulas, derived from the marginal ray fans equation, are valid for small angles of incidence (≤15°), and can be used to design laser cavities, spectrographs and vision adaptive optics systems. An example related to this last application is discussed.
机译:扫描激光检眼镜(SLO)和光学相干断层扫描仪是最先进的视网膜成像仪器,对于早期和可靠地诊断眼部疾病至关重要。最近,随着自适应光学系统(AO)的引入,这些仪器已开始在人类和动物模型中提供接近衍射极限的性能,从而能够分辨视网膜神经节细胞体,它们的过程,视锥光感受器和视网膜色素上皮细胞镶嵌。不幸的是,这些新颖的仪器未能在人类受试者和动物模型之间提供一致的性能。当前仪器的局限性之一是在瞳孔和成像平面中的像散,这通过防止波前传感器测量具有高空间含量的像差而降低了图像质量。这种散光是由用于中继光瞳和成像平面的一系列离轴反射元件(通常是球面镜)引入的。提出了在由成对的球面反射镜形成的离轴反射式无焦点望远镜中图像和光瞳面上的最小像散的表达式。从边际射线扇方程得出的公式对于小入射角(≤15°)有效,可用于设计激光腔,光谱仪和视觉自适应光学系统。讨论了与此最后一个应用程序有关的示例。

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