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High precision laser sclerostomy

机译:高精度激光硬化术

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Ultrafast lasers offer a possibility of removing soft ophthalmic tissue without introducing collateral damage at the ablation site or in the surrounding tissue. The potential for using ultrashort pico- and femtosecond pulse lasers for modification of ophthalmic tissue has been reported elsewhere and has resulted in the introduction of new, minimally invasive procedures into clinical practice. Our research aims to define the most efficient parameters to allow for the modification of scleral tissue without introducing collateral damage. Our experiments were carried out on hydrated porcine sclera in vitro. Porcine sclera, which has similar collagen organization, histology and water content (~70%) to human tissue was used. Supporting this work we present a 2D finite element blow-off model which employs a one-step heating process. It is assumed that the incident laser radiation that is not reflected is absorbed in the tissue according to the Beer-Lambert law and transformed into heat energy. The experimental setup uses an industrial picosecond laser (TRUMPF TruMicro 5×50) with 5.9 ps pulses at 1030 nm, with pulse energies up to 125 μJ and a focused spot diameter of 35 μm. Use of a beam steering scan head allows flexibility in designing complicated scanning patterns. In this study we have demonstrated that picosecond pulses are capable of removing scleral tissue without introducing any major thermal damage which offers a possible route for minimally invasive sclerostomy. In assessing this we have tested several different scanning patterns including single line ablation, square and circular cavity removal.
机译:超快激光可以去除眼科软组织,而不会在消融部位或周围组织中引起附带损害。在其他地方已经报道了使用超短皮秒和飞秒脉冲激光来改造眼科组织的潜力,并导致在临床实践中引入了新的,微创的程序。我们的研究旨在定义最有效的参数,以在不引起附带损害的情况下修改巩膜组织。我们的实验是在体外对水合猪巩膜进行的。使用了具有与人体组织相似的胶原组织,组织学和水含量(〜70%)的猪巩膜。为了支持这项工作,我们提出了采用一步加热过程的二维有限元吹扫模型。假定未反射的入射激光辐射根据比尔-朗伯定律在组织中被吸收并转化为热能。实验设置使用工业皮秒激光器(TRUMPF TruMicro 5×50),在1030 nm处有5.9 ps脉冲,脉冲能量高达125μJ,聚焦点直径为35μm。使用光束控制扫描头可以灵活地设计复杂的扫描图案。在这项研究中,我们证明了皮秒脉冲能够去除巩膜组织而不会引起任何重大的热损伤,这为微创巩膜切开术提供了可能的途径。为了评估这一点,我们测试了几种不同的扫描模式,包括单线消融,方形和圆形腔体切除。

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