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首页> 外文期刊>The Journal of Chemical Physics >Phase field theory of interfaces and crystal nucleation in a eutectic system of fcc structure: I. Transitions in the one-phase liquid region
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Phase field theory of interfaces and crystal nucleation in a eutectic system of fcc structure: I. Transitions in the one-phase liquid region

机译:fcc结构的共晶体系中界面和晶体成核的相场理论:I.一相液相区的跃迁

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The phase field theory (PFT) has been applied to predict equilibrium interfacial properties and nucleation barrier in the binary eutectic system Ag-Cu using double well and interpolation functions deduced from a Ginzburg-Landau expansion that considers fcc (face centered cubic) crystal symmetries. The temperature and composition dependent free energies of the liquid and solid phases are taken from CALculation of PHAse Diagrams-type calculations. The model parameters of PFT are fixed so as to recover an interface thickness of similar to 1 nm from molecular dynamics simulations and the interfacial free energies from the experimental dihedral angles available for the pure components. A nontrivial temperature and composition dependence for the equilibrium interfacial free energy is observed. Mapping the possible nucleation pathways, we find that the Ag and Cu rich critical fluctuations compete against each other in the neighborhood of the eutectic composition. The Tolman length is positive and shows a maximum as a function of undercooling. The PFT predictions for the critical undercooling are found to be consistent with experimental results. These results support the view that heterogeneous nucleation took place in the undercooling experiments available at present. We also present calculations using the classical droplet model [classical nucleation theory (CNT)] and a phenomenological diffuse interface theory (DIT). While the predictions of the CNT with a purely entropic interfacial free energy underestimate the critical undercooling, the DIT results appear to be in a reasonable agreement with the PFT predictions. (C) 2007 American Institute of Physics.
机译:相场理论(PFT)已被应用来预测双相共晶系统Ag-Cu的平衡界面性质和成核势垒,使用的双井和插值函数由考虑到fcc(面心立方)晶体对称性的Ginzburg-Landau展开推导。液相和固相的取决于温度和成分的自由能取自PHAse Diagrams类型计算的计算。固定PFT的模型参数是为了从分子动力学模拟中恢复近似1 nm的界面厚度,并从可用于纯组分的实验二面角恢复界面自由能。观察到平衡界面自由能对温度和组成的依赖性。映射可能的成核路径,我们发现富Ag和Cu的临界波动在共晶成分附近相互竞争。托尔曼长度为正,并且显示为过冷的最大值。发现临界过冷的PFT预测与实验结果一致。这些结果支持这样的观点,即在目前可用的过冷实验中发生了异相形核。我们还介绍了使用经典液滴模型[经典成核理论(CNT)]和现象学扩散界面理论(DIT)进行的计算。尽管具有纯熵界面自由能的CNT预测低估了临界过冷,但DIT结果似乎与PFT预测合理吻合。 (C)2007美国物理研究所。

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