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Time Resolved Digital-Holographic Analysis of Femtosecond Laser-Induced Photodisruption

机译:飞秒激光诱导的光致破裂的时间分辨数字全息分析

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Femtosecond laser oscillator systems with low pulse energy (< 1 μJ) and high repetition rate (MHz) are increasingly used for precise, fast and safe eye surgery. Therefore, the laser tissue interaction process is of great interest to optimize and improve established and future surgical protocols. Besides, using faster laser systems leads to unintended self-induced interaction effects, where a femtosecond laser pulse modifies the vicinity in the material in such a way that the focus of following laser pulses is changed. We used a femtosecond oscillator laser system with high repetition rate and 66 nJ pulse energy to produce photodisruption in water. Water was used as phantom material for ocular tissue, because tissue mainly consists of water. A custom made digital-holographic system was used to measure the temporal material modification from picoseconds until seconds after occurrence of the photodisruption. For illumination of the sample we used either a continuously light source or the femtosecond laser pulse itself in a pump-probe configuration. The holographic system provides quantitative data of phase difference Δφ for the full field of view of several tenth of micrometers. Phase difference is equivalent to the laser induced change in the material's refractive index which can alter focusing conditions of following laser pulses and might impair surgical outcome. We obtained the largest change in Δφ during the first picoseconds, followed by a slow relaxation of Δφ within some milliseconds. The results of time resolved measurements of the laser induced material modification will help to optimize scanning schemes in ocular surgery.
机译:具有低脉冲能量(<1μJ)和高重复频率(MHz)的飞秒激光振荡器系统正越来越多地用于精确,快速和安全的眼科手术。因此,激光组织相互作用过程对于优化和改善已建立的和将来的手术方案具有极大的意义。此外,使用更快的激光系统会导致意想不到的自感应相互作用效应,其中飞秒激光脉冲以改变后续激光脉冲焦点的方式修改了材料中的附近区域。我们使用具有高重复频率和66 nJ脉冲能量的飞秒振荡器激光系统在水中产生光致破裂。水被用作眼组织的幻影材料,因为组织主要由水组成。使用定制的数字全息系统来测量从皮秒到发生光破裂后几秒的时间材料变化。对于样品的照明,我们使用了连续光源或泵浦探针配置的飞秒激光脉冲本身。全息系统为十分之几微米的整个视野​​提供了相位差Δφ的定量数据。相差等效于材料折射率的激光诱导变化,该变化会改变后续激光脉冲的聚焦条件,并可能损害手术效果。在最初的皮秒内,我们获得了Δφ的最大变化,随后在几毫秒内缓慢地放松了Δφ。激光诱导材料改性的时间分辨测量结果将有助于优化眼科手术中的扫描方案。

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