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The role of inertial and spatial confinement in laser interaction with organic materials

机译:惯性和空间限制在激光与有机材料相互作用中的作用

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Short-pulse laser irradiation of organic material performed under conditions of inertial or spatial confinement can result in laser damage or material ejection (ablation) at relatively low laser fluences. A computational investigation of the mechanisms of the efficient transformation of the deposited laser energy into the energy of material ejection is used in this work to discuss a number of potential applications of the regime of confined laser ablation. In particular, we show that a direct irradiation of a bulk organic sample by a laser pulse performed in the regime of stress confinement can lead to the ejection of a layer of a relatively intact material with thickness determined by the laser penetration depth and fluence. Further irradiation of the spalled layer by an intense femtosecond laser pulse leads to efficient emission of picosecond bunches of energetic ions directed toward the target. In another example, a controlled deposition of functional organic molecules into a designated region of a polymer substrate is achieved by laser irradiation of a microscopic amount of molecular substance spatially confined in the tip of a micropipette.
机译:在惯性或空间限制条件下对有机材料进行短脉冲激光辐照可能会导致激光损伤或在相对较低的激光注量下发生材料喷射(烧蚀)。在这项工作中使用了将沉积的激光能量有效转换为材料喷射能量的机制的计算研究,以讨论受限激光烧蚀方案的许多潜在应用。特别地,我们表明,在应力限制状态下执行的激光脉冲直接辐照大块有机样品会导致喷射出一层相对完整的材料,其厚度由激光穿透深度和注量决定。飞秒激光脉冲对剥落层的进一步照射导致有效发射皮秒束的朝目标的高能离子。在另一个实例中,通过激光照射在空间上限制在微量移液器的尖端中的微小量的分子物质,来实现功能性有机分子到聚合物基底的指定区域中的受控沉积。

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