论文标题

现场观察激光诱导的周期性表面结构具有极端的空间和时间分辨率

In-situ observation of the formation of laser-induced periodic surface structures with extreme spatial and temporal resolution

论文作者

Sokolowski-Tinten, K., Bonse, J., Barty, A., Chapman, H. N., Bajt, S., Bogan, M. J., Boutet, S., Cavalleri, A., Düsterer, S., Frank, M., Hajdu, J., Hau-Riege, S., Marchesini, S., Stojanovic, N., Treusch, R.

论文摘要

用强烈的超短激光脉冲的固体表面的辐射代表了将能量沉积到材料中的独特方法。它允许实现极端电子激发和/或非常高的温度和压力的状态,并使材料靠近和超越基本稳定性限制。结果,结构变化和相变经常沿着异常的途径和强烈的非平衡条件发生。由于这些不可逆转的过程的固有多尺度(无论是时间还是空间上),它们的直接实验观察需要将高时间分辨率与适当的空间分辨率结合在一起的技术,并具有单个脉冲/事件以获得良好质量数据的能力。在这方面,第四代光源,即短波长,短脉冲无脉冲电子激光器(FELS)提供了新颖而有趣的可能性。例如,本章将讨论Desy(德国汉堡)的散射实验的结果,这使我们能够解决纳米表面上的激光诱导的结构形成,从纳米的表面到亚微米长度长度,并在较小的nanoseconds到几个nanoseconds coseconds coseconds subseconds subseconds cososeconds。

Irradiation of solid surfaces with intense ultrashort laser pulses represents a unique way of depositing energy into materials. It allows to realize states of extreme electronic excitation and/or very high temperature and pressure, and to drive materials close to and beyond fundamental stability limits. As a consequence, structural changes and phase transitions often occur along unusual pathways and under strongly non-equilibrium conditions. Due to the inherent multiscale nature - both temporally and spatially - of these irreversible processes their direct experimental observation requires techniques that combine high temporal resolution with the appropriate spatial resolution and the capability to obtain good quality data on a single pulse/event basis. In this respect fourth generation light sources, namely short wavelength, short pulse free electron lasers (FELs) are offering new and fascinating possibilities. As an example, this chapter will discuss the results of scattering experiments carried at the FLASH free electron laser at DESY (Hamburg, Germany), which allowed us to resolve laser-induced structure formation at surfaces on the nanometer to sub-micron length scale and in temporal regimes ranging from picoseconds to several nanoseconds with sub-picosecond resolution.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源