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Laser Ablation With Short And Ultrashort Laser Pulses: Basic Mechanisms From Molecular-dynamics Simulations

机译:短和超短激光脉冲的激光烧蚀:分子动力学模拟的基本机理

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摘要

Laser ablation is a technology widely used in many applications. Understanding in detail the mechanisms that lead to ablation remains a formidable challenge because of the complexity of the processes taking place, the variety of species involved, and the range of length and time scales covered. Atomic-level experimental information is difficult to obtain and must be augmented by theory. In this article, we briefly review the progresses that we have accomplished using a simple two-dimensional molecular-dynamics model, insisting on the importance of considering the thermodynamics of the evolution of the systems in order to understand ablation. Through the identification of the thermodynamic pathways followed by the material after irradiation, our model has provided significant insights on the physical mechanisms leading to ablation. It has been demonstrated in particular that these depend strongly on the fluence, and are actually determined by the effective amount of energy received within different regions of the target. Further, internal or external factors, such as inertial confinement, play a key role in determining the route to ablation - and thus the types and sizes of particles ejected - by constraining the thermodynamical evolution of the system. We have established that, for ultrashort pulses in strongly absorbing materials, ablation proceeds by either spallation, phase explosion or fragmentation; the latter, we demonstrate, is the most important mechanism. For longer pulses, ablation may also proceed by trivial fragmentation.
机译:激光烧蚀是在许多应用中广泛使用的技术。由于发生过程的复杂性,所涉及物种的多样性以及所涵盖的长度和时间范围,因此详细了解导致消融的机制仍然是一项艰巨的挑战。原子级的实验信息很难获得,必须通过理论加以补充。在本文中,我们简要回顾了使用简单的二维分子动力学模型所取得的进展,并坚持考虑系统演化的热力学以理解消融的重要性。通过确定辐照后材料所遵循的热力学途径,我们的模型对导致烧蚀的物理机理提供了重要见解。特别是已经证明,这些强烈依赖于注量,并且实际上取决于目标不同区域内接收到的有效能量。此外,诸如惯性约束之类的内部或外部因素通过限制系统的热力学演变,在确定消融途径以及因此决定了所喷射颗粒的类型和尺寸方面起着关键作用。我们已经确定,对于强吸收材料中的超短脉冲,通过剥落,相爆炸或碎裂来进行烧蚀。我们证明,后者是最重要的机制。对于更长的脉冲,消融也可以通过小碎裂进行。

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