首页> 外文会议>Optical interactions with tissue and cells XXV; and Terahertz for Biomedical Applications >Digital-Holographic Analysis of Femtosecond Laser-Induced Photodisruption in Ocular Tissue
【24h】

Digital-Holographic Analysis of Femtosecond Laser-Induced Photodisruption in Ocular Tissue

机译:飞秒激光诱导眼组织光解的数字全息分析

获取原文
获取原文并翻译 | 示例

摘要

High repetition rated femtosecond laser oscillator systems with low pulse energy are more often applied for precise and safer eye surgery. Especially, the cutting procedure in the crystalline lens is of high important for presbyopia treatment. Nevertheless, the fundamental laser tissue interaction process is not completely understood, because apparently a self-induced process takes place, were one modified region changes the focusing behavior of following laser pulses. We used a MHz repetition rate femtosecond laser system with nJ-pulse energy which were focused inside an ocular-tissue-phantom (Hydroxy-ethylmethacrylat - HEMA) to induce photodisruption. The material change, caused by the fs-pulses was measured simultaneously with a compact digital-holographic microscope. To investigate the material manipulation at different time scales, we used a continuously illuminating light source. The holographic images provide quantitative values for optical path length difference (OPL), which is equivalent to a refractive index change. This change of the optical properties may cause following pulses to obtain different focusing conditions. Time lapse measurements during the laser application were performed, which show the temporal evolution of OPL. An increase of OPL during the laser application was measured, which was followed by a decrease in OPL after laser processing. Furthermore, similar experiments were performed in distilled water and in native porcine crystalline lenses. The fs-laser cutting effects in HEMA and crystalline lens were transferable. Simultaneous measurements of the material modification during the cutting process give rise to better knowledge of treatment modalities during ocular tissue processing.
机译:具有低脉冲能量的高重复等级飞秒激光振荡器系统通常用于精确和安全的眼科手术。特别是,晶状体的切割过程对于老花眼治疗非常重要。然而,基本的激光组织相互作用过程还没有完全被理解,因为显然是一个自感应过程发生了,因为一个修改的区域改变了后续激光脉冲的聚焦行为。我们使用具有nJ脉冲能量的MHz重复频率飞秒激光系统,该系统聚焦在眼组织模型(Hydroxy-ethylmethacrylat-HEMA)内部以引起光致破裂。使用紧凑型数字全息显微镜同时测量由fs脉冲引起的材料变化。为了研究在不同时间范围内的物料操纵,我们使用了连续照明的光源。全息图像提供了光程长度差(OPL)的定量值,它等于折射率变化。光学特性的这种变化可能导致随后的脉冲获得不同的聚焦条件。在激光应用过程中进行了时间推移测量,显示了OPL的时间演变。测量了激光施加期间OPL的增加,随后是激光加工后OPL的减少。此外,在蒸馏水和天然猪晶状体中进行了类似的实验。 HEMA和晶状体中的fs激光切割效果是可以转移的。在切割过程中同时测量材料改性会更好地了解眼组织加工过程中的治疗方式。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号