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Transient lattice deformations of crystals studied by means of ultrafast time-resolved x-ray and electron diffraction

机译:通过超快时间分辨X射线和电子衍射研究晶体的瞬态晶格变形

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Ultrafast lattice deformation of tens to hundreds of nanometer thick metallic crystals, after femtosecond laser excitation, was measured directly using 8.04?keV subpicosecond x-ray and 59?keV femtosecond electron pulses. Coherent phonons were generated in both single crystal and polycrystalline films. Lattice compression was observed within the first few picoseconds after laser irradiation in single crystal aluminum, which was attributed to the generation of a blast force and the propagation of elastic waves. The different time scales of lattice heating for tens and hundreds nanometer thick films are clearly distinguished by electron and x-ray pulse diffraction. The electron and lattice heating due to ultrafast deposition of photon energy was simulated using the two-temperature model and the results agreed with experimental observations. This study demonstrates that the combination of two complementary ultrafast time-resolved methods, ultrafast x-ray, and electron diffraction will provide a panoramic picture of the transient structural changes in crystals.
机译:飞秒激光激发后,使用8.04?keV亚皮秒X射线和59?keV飞秒电子脉冲直接测量了数十到数百纳米厚的金属晶体的超快晶格变形。在单晶和多晶膜中都产生相干声子。在单晶铝中激光照射后的最初几皮秒内观察到晶格压缩,这归因于爆炸力的产生和弹性波的传播。通过电子和X射线脉冲衍射可以清楚地区分数十和数百纳米厚的薄膜的晶格加热的不同时间尺度。使用两个温度模型模拟了由于光子能量的超快沉积而导致的电子和晶格加热,其结果与实验观察结果一致。这项研究表明,两种互补的超快时间分辨方法,超快X射线和电子衍射的结合将提供晶体瞬态结构变化的全景图。

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