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Effect of plutonium doping on radiation damage in zirconolite: A computer simulation study

机译:钚掺杂对锆英石辐射损伤的影响:计算机模拟研究

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摘要

We present the results of extensive Molecular Dynamics (MD) simulations of alpha-recoil radiation damage in a range of crystalline zirconolites, CaZrTi2O7. Our studied systems include pure zirconolite, which we use as a reference material and the first ever simulations of damage in Pu-doped zirconolite, where plutonium is doped onto both of the M1 sites in the material, i.e. (Ca0.7Pu0.3)ZrTi2O7 and Ca(Zr0.7Pu0.3)(Ti1.7Fe0.3)O7. Our goal was to determine the extent of local damage caused by a plutonium primary knock on atom (PKA) interacting with the crystal lattice. Recoil energies of up to 34.7 keV have been simulated. The damage is characterised using a number of analysis tools including: site specific radial distribution functions; defect statistics; and the asphericity parameter at various times during the annealing process. Our results show that there is much information to be gained by the use of novel techniques for radiation damage analysis. Also, we show inclusion of actinides in radiation damage simulations can significantly increase the extent of damage observed and should be considered carefully when describing radiation damage behaviour in future.
机译:我们提出了一系列晶体锆石CaZrTi2O7中α-反冲辐射损伤的广泛分子动力学(MD)模拟结果。我们研究的系统包括纯锆石,我们将其用作参考材料,以及有史以来首次模拟掺Pu锆石中的损伤,其中p被掺杂到材料中的两个M1位置,即(Ca0.7Pu0.3)ZrTi2O7和Ca(Zr0.7Pu0.3)(Ti1.7Fe0.3)O7。我们的目标是确定由primary原子(PKA)与晶格相互作用引起的局部破坏的程度。已模拟了高达34.7 keV的反冲能量。使用多种分析工具对破坏进行表征,这些工具包括:特定地点的径向分布函数;缺陷统计;以及退火过程中不同时间的非球面度参数。我们的结果表明,通过使用新技术进行辐射损伤分析可以获得许多信息。此外,我们显示在辐射损伤模拟中包含act系元素可以显着增加观察到的损伤程度,在以后描述辐射损伤行为时应仔细考虑。

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