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Simulation of Rutherford backscattering spectrometry from arbitrary atom structures

机译:任意原子结构对卢瑟福背散射光谱的仿真

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摘要

Rutherford backscattering spectrometry in a channeling direction (RBS/C) is a powerful tool for analysis of the fraction of atoms displaced from their lattice positions. However, it is in many cases not straightforward to analyze what is the actual defect structure underlying the RBS/C signal. To reveal insights of RBS/C signals from arbitrarily complex defective atomic structures, we develop here a method for simulating the RBS/C spectrum from a set of arbitrary read-in atom coordinates (obtained, e.g., from molecular dynamics simulations). We apply the developed method to simulate the RBS/C signals from Ni crystal structures containing randomly displaced atoms, Frenkel point defects, and extended defects, respectively. The RBS/C simulations show that, even for the same number of atoms in defects, the RBS/C signal is much stronger for the extended defects. Comparison with experimental results shows that the disorder profile obtained from RBS/C signals in ion-irradiated Ni is due to a small fraction of extended defects rather than a large number of individual random atoms.
机译:通道方向的卢瑟福背散射光谱(RBS / C)是分析从晶格位置位移的原子分数的强大工具。然而,在许多情况下分析RBS / C信号的实际缺陷结构是什么并不容易。为了揭示来自任意复杂缺陷原子结构的RBS / C信号的见解,我们在此开发一种从一组任意读取的原子坐标(例如从分子动力学模拟获得)中模拟RBS / C光谱的方法。我们应用开发的方法来模拟分别包含随机位移原子,Frenkel点缺陷和扩展缺陷的Ni晶体结构的RBS / C信号。 RBS / C仿真表明,即使缺陷中原子数相同,RBS / C信号对于扩展的缺陷也要强得多。与实验结果的比较表明,从离子辐照的镍中的RBS / C信号获得的无序分布是由于一小部分扩展缺陷而不是大量单个随机原子引起的。

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