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Measurement of temperature distributions after pulsed IR radiation impact in biological tissue models with fluorescent thin films

机译:带有荧光薄膜的生物组织模型中脉冲红外辐射撞击后的温度分布测量

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Abstract: Precise cutting of biological tissue is possible with the Er:YAG laser because of the strong absorption of radiation exhibited by water containing media at 2.94 $mu@m wavelength. To achieve control over the thermal damage caused to the tissue and over the extent of the coagulation zone, a thorough knowledge of the local temperature distribution arising near the impact zone is necessary. Calculations are possible in some simple cases, whereas in others, where liquified tissue material acts as a secondary heat source long after the pulse, a time resolved direct measurement of the temperature distributions with microscopical spatial resolution would be desirable. We have developed a method for measuring two-dimensional temperature distributions in optically transparent media with a high time resolution (up to 4 ns) and with microscopical spatial resolution by imaging the temperature dependent fluorescence distribution of 2 $mu@m thin films positioned inside the target. With this method we have measured the temperature distributions at different times after the impact of single pulses from an Er:YAG laser at various fluences in gelatin targets, which we use as model for biological tissue. The results are compared with the thermal damage inflicted in vitro to different types of animal tissue. A strong dependence of the temperature distributions and their dynamical behavior on pulse fluence and water content of the target is observed, in congruence with the coagulation zones observed biological tissue.!
机译:摘要:Er:YAG激光可以精确切割生物组织,因为含水波长为2.94μm的介质所表现出的辐射吸收能力强。为了控制对组织造成的热损伤和凝血区范围,必须全面了解撞击区附近产生的局部温度分布。在某些简单的情况下,可以进行计算,而在另一些情况下,在脉冲后很长时间,液化的组织材料充当辅助热源,则需要时间分辨的,具有微观空间分辨率的温度分布的直接测量。我们已经开发了一种方法,可以通过对位于光学薄膜内部的2μm薄膜的温度依赖性荧光分布进行成像,来测量具有高时间分辨率(最高4 ns)和微观空间分辨率的光学透明介质中的二维温度分布。目标。通过这种方法,我们测量了来自Er:YAG激光的单个脉冲在明胶靶标中的不同通量影响后在不同时间的温度分布,我们将其用作生物组织的模型。将结果与体外对不同类型的动物组织造成的热损伤进行比较。与观察到的生物组织的凝结区一致,观察到温度分布及其动力学行为对靶标的脉冲通量和水含量的强烈依赖性。

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