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Laser-matter structuration of optical and biological materials

机译:光学和生物材料的激光物质结构

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摘要

Interaction of ultrafast laser, i.e. from the femtosecond (fs) to the nanosecond (ns) regime, with initially transparent matter may produce very high energy density hot spots in the bulk as well as at the material surface, depending on focusing conditions. In the fs regime, absorption is due to ionisation of the dielectric, which enables absorption process to begin, and then hydrodynamic to take place. In the ns regime both absorption and hydrodynamic are coupled to each other, which complexifies considerably the comprehension but matter structuration looks similar. A numerical tool including solution of 3D Maxwell equations and a rate equation for free electrons is first compared to some available simple models of laser energy absorption. Then, subsequent material deformation, i.e. structuration, is determined by solving hydrodynamic equations, including or not solid behaviour. We show that nature of the final structures strongly depends on the amount of deposited energy and on the shape of the absorption zone. Then we address some problems related to laser-matter structuration of optical and biological materials in the fs, ps and ns regimes.
机译:超快激光的相互作用,即从飞秒(fs)到纳秒(ns)体制与初始透明物质的相互作用,可能会在聚焦体以及材料表面产生非常高的能量密度热点,具体取决于聚焦条件。在fs体制中,吸收是由于电介质的电离引起的,电离使吸收过程开始,然后发生流体动力学。在ns体制中,吸收和流体动力学是相互耦合的,这使理解变得相当复杂,但物质结构看起来很相似。首先将包括3D Maxwell方程和自由电子速率方程的解的数值工具与一些可用的激光能量吸收简单模型进行比较。然后,通过求解流体动力学方程来确定随后的材料变形,即结构化,包括或不包括固体行为。我们表明,最终结构的性质在很大程度上取决于沉积的能量和吸收区的形状。然后,我们解决了与fs,ps和ns制度中光学和生物材料的激光物质结构有关的一些问题。

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