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Subnanosecond phase transition dynamics in laser-shocked iron

机译:激光震动铁中的亚基秒转移动态

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Iron is one of the most studied chemical elements due to its sociotechnological and planetary importance; hence, understanding its structural transition dynamics is of vital interest. By combining a short pulse optical laser and an ultrashort free electron laser pulse, we have observed the subnanosecond structural dynamics of iron from high-quality x-ray diffraction data measured at 50-ps intervals up to 2500 ps. We unequivocally identify a three-wave structure during the initial compression and a two-wave structure during the decaying shock, involving all of the known structural types of iron (α-, γ-, and ε-phase). In the final stage, negative lattice pressures are generated by the propagation of rarefaction waves, leading to the formation of expanded phases and the recovery of γ-phase. Our observations demonstrate the unique capability of measuring the atomistic evolution during the entire lattice compression and release processes at unprecedented time and strain rate.
机译:由于其社会技术和行星重视,铁是最受研究的化学元素之一;因此,了解其结构转变动态是至关重要的兴趣。通过组合短脉冲光激光和超短自由电子激光脉冲,我们观察到铁的亚基二十秒结构动力学从高质量的X射线衍射数据,以50-PS间隔测量,高达2500 ps。在初始压缩期间,我们在初始压缩期间识别三波结构,并且在衰减冲击期间的双波结构,涉及所有已知的结构类型的铁(α-,γ-和ε相)。在最终阶段,负晶格压力由稀疏波的传播产生,导致形成膨胀相和γ相的回收。我们的观察结果证明了在前所未有的时间和应变率下测量整个晶格压缩和释放过程中的原子演化的独特能力。

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