Lim Khan, Durand Magali, Baudelet Matthieu, Richardson Martin
Laser Plasma Laboratory, Townes Laser Institute, College of Optics and Photonics, University of Central Florida, Orlando, FL 32816, USA.
Sci Rep. 2014 Dec 1;4:7217. doi: 10.1038/srep07217.
Laser filamentation in gases is often carried out in the laboratory with focusing optics to better stabilize the filament, whereas real-world applications of filaments frequently involve collimated or near-collimated beams. It is well documented that geometrical focusing can alter the properties of laser filaments and, consequently, a transition between a collimated and a strongly focused filament is expected. Nevertheless, this transition point has not been identified. Here, we propose an analytical method to determine the transition, and show that it corresponds to an actual shift in the balance of physical mechanisms governing filamentation. In high-NA conditions, filamentation is primarily governed by geometrical focusing and plasma effects, while the Kerr nonlinearity plays a more significant role as NA decreases. We find the transition between the two regimes to be relatively insensitive to the intrinsic laser parameters, and our analysis agrees well with a wide range of parameters found in published literature.
气体中的激光成丝通常在实验室中使用聚焦光学器件进行,以便更好地稳定细丝,而细丝在实际应用中经常涉及准直或近准直光束。有充分的文献记载,几何聚焦会改变激光细丝的特性,因此,预计在准直细丝和强聚焦细丝之间会发生转变。然而,这个转变点尚未确定。在这里,我们提出了一种分析方法来确定这种转变,并表明它对应于控制成丝的物理机制平衡的实际变化。在高数值孔径(NA)条件下,成丝主要由几何聚焦和等离子体效应控制,而随着NA减小,克尔非线性起更重要的作用。我们发现两种状态之间的转变对激光固有参数相对不敏感,并且我们的分析与已发表文献中发现的广泛参数非常吻合。