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Micro-processing of polymers and biological materials using high repetition rate femtosecond laser pulses.

机译:使用高重复率飞秒激光脉冲对聚合物和生物材料进行微处理。

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摘要

High repetition rate femtosecond laser micro-processing has been applied to ophthalmological hydrogel polymers and ocular tissues to create novel refractive and diffractive structures. Through the optimization of laser irradiation conditions and material properties, this technology has become feasible for future industrial applications and clinical practices.;A femtosecond laser micro-processing workstation has been designed and developed. Different experimental parameters of the workstation such as laser pulse duration, focusing lens, and translational stages have been described and discussed. Diffractive gratings and three-dimensional waveguides have been fabricated and characterized in hydrogel polymers, and refractive index modifications as large as + 0.06 have been observed within the laser-irradiated region. Raman spectroscopic studies have shown that our femtosecond laser micro-processing induces significant thermal accumulation, resulting in a densification of the polymer network and increasing the localized refractive index of polymers within the laser irradiated region.;Different kinds of dye chromophores have been doped in hydrogel polymers to enhance the two-photon absorption during femtosecond laser micro-processing. As the result, laser scanning speed can be greatly increased while the large refractive index modifications remain. Femtosecond laser wavelength and pulse energy as well as water and dye concentration of the hydrogels are optimized.;Lightly fixed ocular tissues such as corneas and lenses have been micro-processed by focused femtosecond laser pulses, and refractive index modifications without any tissue-breakdown are observed within the stromal layer of the corneas and the cortex of the lenses. Living corneas are doped with Sodium Fluorescein to increase the two-photon absorption during the laser micro-processing, and laser scanning speed can be greatly increased while inducing large refractive index modifications. No evidence of cell death has been observed in or around the laser-induced refractive index modification regions. These results support the notion that femtosecond laser micro-processing method may be an excellent means of altering the refraction or higher order aberration content of corneal tissue without cell death and short-term tissue damage, and has been named as Intra-tissue Refractive Index Shaping (IRIS).;The femtosecond laser micro-processing workstation has also been employed for laser transfection of single defined cells. Some preliminary results suggest that this method can be used to trace individual cells and record their biological and morphological evolution, which is quite promising in many biomedical applications especially in immunology science.;In conclusion, high repetition rate femtosecond laser micro-processing has been employed to fabricate microstructures in ophthalmological hydrogels and ocular tissues. Its unique three-dimensional capability over transparent materials and biological media makes it a powerful tool and will greatly impact the future of laser material-processing.
机译:飞秒激光的高重复率微处理技术已应用于眼科水凝胶聚合物和眼组织,以创建新颖的折射和衍射结构。通过优化激光辐照条件和材料性能,该技术已成为未来工业应用和临床实践的可行方法。设计并开发了飞秒激光微处理工作站。已经描述和讨论了工作站的不同实验参数,例如激光脉冲持续时间,聚焦透镜和平移阶段。已经在水凝胶聚合物中制造了衍射光栅和三维波导并对其进行了表征,在激光辐照区域内观察到的折射率变化高达+ 0.06。拉曼光谱研究表明,我们的飞秒激光微处理过程会引起大量的热积累,从而导致聚合物网络的致密化,并增加了激光辐照区域内聚合物的局部折射率。水凝胶中已掺杂了多种染料生色团。飞秒激光微加工过程中,聚合物可增强双光子吸收。结果,可以大大提高激光扫描速度,同时保留较大的折射率变化。飞秒激光波长和脉冲能量以及水凝胶的水和染料浓度得到优化。;聚焦的飞秒激光脉冲对微固定的眼组织(例如角膜和晶状体)进行了微处理,并且折射率的改变没有组织破裂。在角膜基质层和晶状体皮质内观察到。活体角膜掺有荧光素钠,以增加激光微加工过程中的双光子吸收,可以大大提高激光扫描速度,同时引起较大的折射率变化。在激光诱导的折射率改变区域内或附近没有观察到细胞死亡的迹象。这些结果支持了飞秒激光微加工方法可能是改变角膜组织的折射或更高阶像差含量而不会导致细胞死亡和短期组织损伤的极好方法,并被称为组织内折射率整形飞秒激光微处理工作站也已用于单个定义细胞的激光转染。一些初步结果表明,该方法可用于追踪单个细胞并记录其生物学和形态演变,这在许多生物医学应用中,特别是在免疫学领域中,是非常有前途的。在眼科水凝胶和眼组织中制造微结构。它对透明材料和生物介质的独特三维能力使其成为强大的工具,并将极大地影响激光材料加工的未来。

著录项

  • 作者

    Ding, Li.;

  • 作者单位

    University of Rochester.;

  • 授予单位 University of Rochester.;
  • 学科 Physics Optics.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 191 p.
  • 总页数 191
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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