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Chromatically encoded high-speed photography of cavitation bubble dynamics inside inhomogeneous ophthalmic tissue

机译:非均质眼科组织内空化气泡动力学的色编码高速摄影

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The interaction effect of photodisruption, which is used for dissection of biological tissue with fs-laser pulses, has been intensively studied inside water as prevalent sample medium. In this case, the single effect is highly reproducible and, hence, the method of time-resolved photography is sufficiently applicable. In contrast, the reproducibility significantly decreases analyzing more solid and anisotropic media like biological tissue. Therefore, a high-speed photographic approach is necessary in this case. The presented study introduces a novel technique for high-speed photography based on the principle of chromatic encoding. For illumination of the region of interest within the sample medium, the light paths of up to 12 LEDs with various emission wavelengths are overlaid via optical filters. Here, MOSFET-electronics provide a LED flash with a duration < 100 ns; the diodes are externally triggered with a distinct delay for every LED. Furthermore, the different illumination wavelengths are chromatically separated again for detection via camera chip. Thus, the experimental setup enables the generation of a time-sequence of ≤ 12 images of a single cavitation bubble dynamics. In comparison to conventional time-resolved photography, images in sample media like water and HEMA show the significant advantages of this novel illumination technique. In conclusion, the results of this study are of great importance for the fundamental evaluation of the laser-tissue interaction inside anisotropic biological tissue and for the optimization of the surgical process with high-repetition rate fs-lasers. Additionally, this application is also suitable for the investigation of other microscopic, ultra-fast events in transparent inhomogeneous materials.
机译:在水中作为流行的样品介质,对光致破坏的相互作用效应进行了深入研究,该光致破坏用于通过fs激光脉冲解剖生物组织。在这种情况下,单一效果是高度可再现的,因此,时间分辨摄影方法是足够适用的。相反,分析更多的固体和各向异性介质(如生物组织)时,可重现性显着降低。因此,在这种情况下,需要高速摄影方法。本研究介绍了一种基于彩色编码原理的高速摄影新技术。为了照亮样品介质中的目标区域,通过滤光片覆盖多达12个具有各种发射波长的LED的光路。此处,MOSFET电子器件提供持续时间<100 ns的LED闪光灯;二极管是由外部触发的,每个LED都有明显的延迟。此外,将不同的照明波长再次进行色分离,以通过相机芯片进行检测。因此,实验设置可以生成≤12个单个空化气泡动力学图像的时间序列。与传统的时间分辨摄影相比,诸如水和HEMA之类的样品介质中的图像显示了这种新颖照明技术的显着优势。总之,这项研究的结果对于各向异性生物组织内部激光与组织相互作用的基础评估以及以高重复频率fs激光优化手术过程具有重要意义。此外,此应用程序还适用于研究透明非均质材料中的其他微观超快事件。

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