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Online in situ x-ray diffraction setup for structural modification studies during swift heavy ion irradiation

机译:在线原位X射线衍射装置,用于快速重离子辐照期间的结构修饰研究

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The high energy density of electronic excitations due to the impact of swift heavy ions can induce structural modifications in materials. We present an x-ray diffractometer called ALIX (“Analyse en Ligne sur IRRSUD par diffraction de rayons X”), which has been set up at the low-energy beamline (IRRadiation SUD - IRRSUD) of the Grand Accélérateur National d’Ions Lourds facility, to allow the study of structural modification kinetics as a function of the ion fluence. The x-ray setup has been modified and optimized to enable irradiation by swift heavy ions simultaneously to x-ray pattern recording. We present the capability of ALIX to perform simultaneous irradiation–diffraction by using energy discrimination between x-rays from diffraction and from ion-target interaction. To illustrate its potential, results of sequential or simultaneous irradiation–diffraction are presented in this article to show radiation effects on the structural properties of ceramics. Phase transition kinetics have been studied during xenon ion irradiation of polycrystalline MgO and SrTiO3. We have observed that MgO oxide is radiation-resistant to high electronic excitations, contrary to the high sensitivity of SrTiO3, which exhibits transition from the crystalline to the amorphous state during irradiation. By interpreting the amorphization kinetics of SrTiO3, defect overlapping models are discussed as well as latent track characteristics. Together with a transmission electron microscopy study, we conclude that a single impact model describes the phase transition mechanism.
机译:由于迅速的重离子的影响,电子激发的高能量密度会引起材料的结构改性。我们介绍了一种称为ALIX的X射线衍射仪(“ IRDSUD的X射线分析”),它已在国家高等离子国家大剧院的低能光束线上(IRRadiation SUD-IRRSUD)建立。设备,以研究结构修饰动力学作为离子通量的函数。 X射线设置已经过修改和优化,可以通过快速重离子的照射与X射线图案记录同时进行。我们通过利用衍射和离子靶相互作用产生的X射线之间的能量判别,展示了ALIX进行同步辐射衍射的能力。为了说明其潜力,本文介绍了顺序或同时进行辐照衍射的结果,以显示辐射对陶瓷结构性能的影响。已经在氙离子辐照多晶MgO和SrTiO3的过程中研究了相变动力学。我们已经观察到MgO氧化物对高电子激发具有抗辐射性,这与SrTiO3的高灵敏度相反,后者在辐照过程中表现出从晶态到非晶态的转变。通过解释SrTiO3的非晶化动力学,讨论了缺陷重叠模型以及潜在的轨迹特性。连同透射电子显微镜研究,我们得出的结论是,单个冲击模型描述了相变机制。

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