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Biolistic injection of microparticles with high-power Nd:YAG laser

机译:高能Nd:YAG激光的生物射流注射微粒

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摘要

Irradiation of a high-power laser pulse (above 10~(9) W/cm~(2)) on thin metal foil causes ablation, which is characterized by a strong plasma-shock formation followed by a rapid expulsion of surface matter. The shock propagates through the foil and reverberates on the rear side causing instant deformation of the metal foil, whose surface is treated with microparticles prior to ablation. Based on this principle of microparticle ejection, we develop a laser-based injector that features controllability and stability. We also perform characterization of the penetration depths at varying confinements and energy levels. The confinement media include glass (BK7), water, and ultrasound gel. Biological tissue was replicated by a gelatin-water solution at a 3percent weight ratio. Present data show that the confinement effect results in a significant enhancement of penetration depth reached by 5 (mu)m cobalt microparticles. Also, there exists an optimal thickness at each energy level when using liquid confinement for enhanced particle delivery.
机译:在薄金属箔上照射高功率激光脉冲(高于10〜(9)W / cm〜(2)以上)会引起烧蚀,其特征是强烈的等离子体冲击形成,然后迅速排出表面物质。冲击波通过金属箔传播,并在背面回荡,导致金属箔即时变形,金属箔的表面在烧蚀前已经过微粒处理。基于这种微粒喷射原理,我们开发了具有可控制性和稳定性的基于激光的喷射器。我们还将在不同的限制和能量水平下对穿透深度进行表征。限制介质包括玻璃(BK7),水和超声凝胶。通过明胶水溶液以3%的重量比复制生物组织。目前的数据表明,限制作用导致5μm钴微粒达到的渗透深度显着提高。而且,当使用液体限制来增强颗粒输送时,在每个能级上都存在最佳厚度。

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