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Visualization of ultrafast melting initiated from radiation-driven defects in solids

机译:可视化由固体中受辐射驱动的缺陷引发的超快熔融

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Materials exposed to extreme radiation environments such as fusion reactors or deep spaces accumulate substantial defect populations that alter their properties and subsequently the melting behavior. The quantitative characterization requires visualization with femtosecond temporal resolution on the atomic-scale length through measurements of the pair correlation function. Here, we demonstrate experimentally that electron diffraction at relativistic energies opens a new approach for studies of melting kinetics. Our measurements in radiation-damaged tungsten show that the tungsten target subjected to 10 displacements per atom of damage undergoes a melting transition below the melting temperature. Two-temperature molecular dynamics simulations reveal the crucial role of defect clusters, particularly nanovoids, in driving the ultrafast melting process observed on the time scale of less than 10 ps. These results provide new atomic-level insights into the ultrafast melting processes of materials in extreme environments.
机译:暴露于极端辐射环境中的材料(例如聚变反应堆或深空)会积累大量缺陷,这些缺陷会改变其性能,进而改变其熔化行为。定量表征需要通过对相关函数的测量以飞秒级的时间分辨率在原子尺度长度上进行可视化。在这里,我们通过实验证明相对论能量的电子衍射为熔解动力学研究开辟了新途径。我们对辐射损坏的钨的测量表明,每个损坏原子受到10个位移的钨靶材在低于熔化温度的条件下经历了熔化转变。两种温度的分子动力学模拟揭示了缺陷簇(尤其是纳米空隙)在驱动小于10 ps的时间尺度上观察到的超快熔融过程中的关键作用。这些结果为在极端环境下材料的超快熔化过程提供了原子级的新见解。

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