首页> 外文会议>Frontiers in ultrafast optics: biomedical, scientific, and industrial applications XVIII >Scattering properties of ultrafast laser-induced refractive index shaping lenticular structures in hydrogels
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Scattering properties of ultrafast laser-induced refractive index shaping lenticular structures in hydrogels

机译:超快激光诱导折射率成形双凸透镜结构在水凝胶中的散射特性

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We present measurements of light scatter induced by a new ultrafast laser technique being developed for laser refractive correction in transparent ophthalmic materials such as cornea, contact lenses, and/or intraocular lenses. In this new technique, called intra-tissue refractive index shaping (IRIS), a 405 nm femtosecond laser is focused and scanned below the corneal surface, inducing a spatially-varying refractive index change that corrects vision errors. In contrast with traditional laser correction techniques, such as laser in-situ keratomileusis (LASIK) or photorefractive keratectomy (PRK), IRIS does not operate via photoablation, but rather changes the refractive index of transparent materials such as cornea and hydrogels. A concern with any laser eye correction technique is additional scatter induced by the process, which can adversely affect vision, especially at night. The goal of this investigation is to identify sources of scatter induced by IRIS and to mitigate possible effects on visual performance in ophthalmic applications. Preliminary light scattering measurements on patterns written into hydrogel showed four sources of scatter, differentiated by distinct behaviors: (1) scattering from scanned lines; (2) scattering from stitching errors, resulting from adjacent scanning fields not being aligned to one another; (3) diffraction from Fresnel zone discontinuities; and (4) long-period variations in the scans that created distinct diffraction peaks, likely due to inconsistent line spacing in the writing instrument. By knowing the nature of these different scattering errors, it will now be possible to modify and optimize the design of IRIS structures to mitigate potential deficits in visual performance in human clinical trials.
机译:我们介绍了由新的超快激光技术引起的光散射的测量结果,该技术正在开发用于透明眼科材料(例如角膜,隐形眼镜和/或眼内透镜)的激光屈光矫正。在这种称为组织内折射率整形(IRIS)的新技术中,将405 nm飞秒激光聚焦并扫描到角膜表面下方,从而引起可矫正视力误差的空间变化的折射率变化。与传统的激光矫正技术(例如激光原位角膜磨镶术(LASIK)或光折射角膜切除术(PRK))相比,IRIS并非通过光消融术进行操作,而是改变了透明材料(例如角膜和水凝胶)的折射率。任何激光眼矫正技术都需要考虑的一个问题是该过程会引起额外的散射,这可能会对视力产生不利影响,尤其是在夜间。这项研究的目的是确定由IRIS引起的散射源,并减轻对眼科应用中视觉性能的可能影响。对写入水凝胶的图案进行的初步光散射测量显示了四个散射源,通过不同的行为加以区分:(1)从扫描线散射; (2)由于相邻扫描场彼此不对齐而导致的拼接错误造成的散射; (3)来自菲涅耳区不连续性的衍射; (4)扫描中的长期变化会产生明显的衍射峰,这可能是由于书写工具中的行距不一致造成的。通过了解这些不同的散射误差的性质,现在可以修改和优化IRIS结构的设计,以减轻人类临床试验中视觉性能的潜在缺陷。

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