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皮秒时间尺度上熔化的结构研究。

Structural studies of melting on the picosecond time scale.

作者信息

Spoel David van der, Maia Filipe R N C, Caleman Carl

机构信息

Department of Cell and Molecular Biology, Uppsala University, Box 596, SE-75124 Uppsala, Sweden.

出版信息

Phys Chem Chem Phys. 2008 Nov 14;10(42):6344-9. doi: 10.1039/b807550f. Epub 2008 Sep 23.

Abstract

Ultrafast structural studies of laser-induced melting have demonstrated that the solid-liquid phase transition can take place on a picosecond time scale in a variety of materials. Experimental studies using ångström wavelength X-rays from the sub-picosecond pulse source at Stanford (now retired) on non-thermal melting of semi-conductors, such as indium antimonide, employed the decay of a single Bragg-peak to measure the time component of the phase transition. These materials were found to start melting within one picosecond after the laser pulse. Recent computer simulations have described the thermal melting of ice induced by an infrared laser pulse. Here it was shown that melting can happen within a few picoseconds, somewhat slower than non-thermal melting in semi-conductors. These computer simulations are compatible with spectroscopy experiments on ice-melting, demonstrating that simulations form a very powerful complement to experiments targeting the process of phase-transitions. Here we present an overview of recent experimental and theoretical studies of melting, as well as new simulations of ice-melting where the effect of the size of the crystal on scattering is studied. Based on simulations of a near-macroscopic crystal, we predict the decay of the most intense Bragg peaks of ice following heating by laser pulse, by modeling the scattering from the melting sample in the simulations.

摘要

对激光诱导熔化的超快结构研究表明,固液相变能在皮秒时间尺度内在多种材料中发生。利用斯坦福大学(现已退役)亚皮秒脉冲源产生的埃级波长X射线对诸如锑化铟等半导体的非热熔化进行的实验研究,采用单个布拉格峰的衰减来测量相变的时间分量。发现这些材料在激光脉冲后一皮秒内开始熔化。最近的计算机模拟描述了红外激光脉冲诱导冰的热熔化。结果表明,熔化能在几皮秒内发生,比半导体中的非热熔化稍慢一些。这些计算机模拟与冰熔化的光谱实验结果相符,表明模拟是针对相变过程的实验的有力补充。在此,我们概述了近期关于熔化的实验和理论研究,以及对冰熔化的新模拟,其中研究了晶体尺寸对散射的影响。基于对近宏观晶体的模拟,我们通过在模拟中对熔化样品的散射进行建模,预测了激光脉冲加热后冰的最强布拉格峰的衰减情况。

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