An Integrated Experimental and Computational Approach for the Investigation of Irradiation Effects in Materials

X. Jin, A. Boulle, A. Chartier, J. Crocombette, A. Debelle
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引用次数: 0

Abstract

Ion beams delivered by particle accelerators are routinely used to emulate harsh, radiative environments and they also constitute the foundations of the modern microelectronics industry. To characterize irradiated materials, numerous experimental and computational techniques can be implemented, but it is extremely diffcult to effectively intertwine them, and to compare the associated data. In the present work, we present an integrated, experimental and computational approach that uses a same set of molecular dynamics simulations to generate signals of Rutherford backscattering spectrometry in channelling condition andX-ray diffraction, with UO2 as a test-case material. From these signals, parameters to monitor the damage level are computed, compared and confronted with experimental data. The good agreement that comes out demonstrates the validity of the approach, hence providing a new tool for the fine study of irradiation effects in materials.
材料辐照效应研究的综合实验与计算方法
粒子加速器释放的离子束通常用于模拟恶劣的辐射环境,它们也构成了现代微电子工业的基础。为了表征辐照材料,可以实施许多实验和计算技术,但有效地将它们交织在一起并比较相关数据是极其困难的。在目前的工作中,我们提出了一种集成的实验和计算方法,该方法使用相同的一组分子动力学模拟来生成通道条件下的卢瑟福后向散射光谱和x射线衍射的信号,UO2作为测试用例材料。从这些信号中计算出监测损伤程度的参数,并与实验数据进行比较。结果表明了该方法的有效性,为材料辐照效应的精细研究提供了一种新的工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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