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Acoustic spectroscopy of Er:YAG laser ablation of skin: first results

机译:Er:YAG激光消融皮肤的声波光谱:初步结果

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Abstract: We investigated the acoustic signal of Er:YAG laser ablation in a gaseous environment. The high absorption coefficient of water at the laser wavelength of 2.94 micrometer leads to a small penetration depth of the Er:YAG laser pulses into tissue. The deposition of laser energy in a thin layer at the tissue surface causes a rapid evaporization of tissue water. The resulting tissue removal is used, for example, in laser skin resurfacing. The explosive evaporation of the tissue leads to an acoustic signal. We investigated the generation process of the signal caused by free-running laser pulses and its characteristic parameters in the time and frequency domain in correlation to the tissue and laser parameters with the aim to identify different tissues or tissue layers by analyzing the acoustic signal. Porcine skin and gelatin probes were ablated. Acoustic signals up to 1 MHz were measured using a condenser microphone and a piezoelectric airborne transducer. Schlieren photography was performed simultaneously to the acoustic investigations to visualize gaseous and condensed ablation products. We found that the high frequency content of the acoustic spectrum is due to shock waves created by each of the first laser spikes. Later in the laser pulse the acoustic signal is dominated by lower frequency components, because the generation of the high frequency components is inhibited by the interaction of the radiation with the ablation plume. The acoustic signature of free-running Er:YAG laser ablation seems to be particularly tissue specific during the first part of the laser pulse when the radiation interacts directly with the tissue. !13
机译:摘要:我们研究了气态环境中Er:YAG激光烧蚀的声信号。在2.94微米的激光波长处,水的高吸收系数导致Er:YAG激光脉冲进入组织的穿透深度较小。激光能量在组织表面的薄层中沉积会导致组织水快速蒸发。所得到的组织去除例如用于激光皮肤换肤。组织的爆炸性蒸发会导致声音信号。我们研究了由自由运行的激光脉冲引起的信号的产生过程,以及在时频域中与组织和激光参数相关的特征参数,旨在通过分析声信号来识别不同的组织或组织层。去除猪皮和明胶探针。使用电容式麦克风和压电航空传感器测量了高达1 MHz的声音信号。 Schlieren摄影与声学研究同时进行,以可视化气态和凝结的烧蚀产物。我们发现,声谱的高频含量是由于每个第一激光尖峰产生的冲击波所致。稍后在激光脉冲中,声信号被低频分量所控制,因为高频分量的产生被辐射与消融羽流的相互作用所抑制。当辐射直接与组织相互作用时,自由运行的Er:YAG激光消融的声学特征似乎特别是组织特有的。 !13

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