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Symmetry breaking during defect self-organization under irradiation

机译:在照射下缺陷自组织期间的对称性打破

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One of the most intriguing phenomena under radiation is the self-organization of defects, such as the void superlattices, which have been observed in a list of bcc and fcc metals and alloys when the irradiation conditions fall into certain windows defined by temperature and dose rate. A superlattice features a lattice parameter and a crystal structure. Previously, it has been shown that the superlattice parameter is given by the wavelength of vacancy concentration waves that develop when the uniform concentration field becomes unstable. This instability is driven thermodynamically by vacancy concentration supersaturation and affected by the irradiation condition. However, a theory that predicts the superlattice symmetry, i.e., the selection of superlattice structure, has remained missing decades after the first report of superlattices. By analyzing the nonlinear recombination between vacancies and self-interstitial-atoms (SIAs) in the discrete lattice space, this work establishes the physical connection between symmetry breaking and anisotropic SIA diffusion, allowing for predictions of void ordering during defect self-organization. The results suggest that while the instability is driven thermodynamically by vacancy supersaturation, the symmetry development is kinetically rather than thermodynamically driven. The significance of SIA diffusion anisotropy in affecting superlattice formation under irradiation is also indicated. Various superlattice structures can be predicted based on different SIA diffusion modes, and the predictions are in good agreement with atomistic simulations and previous experimental observations.
机译:辐射下最有趣的现象之一是自组织的缺陷,例如在辐射条件下降到由温度和剂量率定义的某些窗口中的BCC和FCC金属和合金中已经观察到的空隙超级图。 。超晶格具有格子参数和晶体结构。以前,已经示出了超晶格参数由当均匀浓度场变得不稳定时产生的空位浓度波的波长给出。通过空位浓度过饱和并受到照射条件影响,这种不稳定性被热力地驱动。然而,在超晶格的第一个报告之后,预测超晶格对称性的理论,即超晶格结构的选择,仍然缺少数十年。通过在离散格空间中的空位和自隙 - 原子(SIAS)之间的非线性重组分析,这项工作建立了对称性断裂和各向异性SIA扩散之间的物理连接,允许在缺陷自组织期间预测空隙排序。结果表明,虽然通过空位过饱和度热力地驱动不稳定性,但对称性发育是动力学的,而不是热力学驱动。还表明了SIA扩散各向异性在照射下影响超晶格形成的意义。可以基于不同的SIA扩散模式来预测各种超晶格结构,并且预测与原子模拟和以前的实验观察良好。

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