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Direct comparison between modeling and experiment: an α-Fe ion implantation study

机译:建模与实验之间的直接比较:α-Fe离子植入研究

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Advances in computational capability and modeling techniques, as well as improvements in experimental characterization methods offer the possibility of directly comparing modeling and experiment investigations of irradiation effects in metals. As part of a collaboration among the Instituto de Fusion Nuclear (DENIM), Lawrence Livermore National Laboratory (LLNL) and CIEMAT, single and polycrystalline α-Fe samples have been irradiated with 150 keV Fe-ions to doses up to several dpa. The irradiated microstructure is to be examined with both transmission electron microscopy (TEM) and positron annihilation spectroscopy (PAS). Concurrently, we have modeled the damage accumulation in Fe under these irradiation conditions using a combination of molecular dynamics (MD) and kinetic Monte Carlo (KMC). We aim to make direct comparison between the simulation results and the experiments by simulating TEM images and estimating positron lifetimes for the predicted microstructures. While the identity of the matrix defect features cannot be determined from TEM observations alone, we propose that both large self- interstitial loops, trapped at impurities within the material, and small, spherical nanovoids form.
机译:计算能力和建模技术的进步,以及实验表征方法的改进提供了直接比较金属辐照效应的建模和实验研究的可能性。作为Instituto de Fusion核(牛仔布)之间的合作的一部分,劳伦斯利弗莫尔国家实验室(LLN1)和Ciemat,单晶和多晶α-Fe样品已经用150kev Fe-离子照射,以剂量高达几个DPA。用透射电子显微镜(TEM)和正电子湮没光谱(PAS)检查辐照微结构。同时,我们使用分子动力学(MD)和动力学蒙特卡罗(KMC)的组合在这些照射条件下建模了FE的损伤积累。我们的目标是通过模拟TEM图像和估计预测微结构的正电子寿命来进行模拟结果和实验之间的直接比较。虽然矩阵缺陷特征的同一性不能单独确定来自TEM观察的,但我们提出两个大型自隙环,捕获材料内的杂质,而小的球形纳米型形式。

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