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First-principles theory of vibrational effects on the phase stability of Cu-Au compounds and alloys

机译:振动对Cu-Au化合物和合金相稳定性的第一性原理

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The importance of vibrational effects on the phase stability of Cu-Au alloys is investigated via a combination of first-principles linear response calculations and a statistical mechanics cluster expansion method. We find that (i) the logarithmic average of the phonon density of states in ordered compounds is lower than in the pure constituents, thus leading to positive vibrational entropies of formation and to negative free energies of formation, stabilizing the compounds and alloys with respect to the phase separated state. (ii) The vibrational free energy is lower in the configurationally random alloy than in ordered ground states, which leads to lower order-disorder transition temperatures. (iii) The random alloys have larger thermal expansion coefficients than ordered ground states, and therefore the vibrational entropy difference between the random and ordered states is a strongly increasing function of temperature. However, (iv) due to the associated increase in the static internal energy, the effect of thermal expansion on the free energy (and thus on the phase diagram) is only half that of the entropy alone. [References: 24]
机译:结合第一性原理线性响应计算和统计力学簇扩展方法,研究了振动效应对Cu-Au合金相稳定性的重要性。我们发现(i)有序化合物中声子密度的对数平均值低于纯组分中的声子密度,因此导致形成的正振动熵和形成的负自由能,从而使化合物和合金相对于相分离状态。 (ii)形态随机合金中的振动自由能低于有序基态中的振动自由能,这导致较低的有序-无序转变温度。 (iii)无规合金具有比有序基态更大的热膨胀系数,因此无序和有序态之间的振动熵差是温度的强烈增加函数。但是,(iv)由于静态内部能量的相关增加,热膨胀对自由能的影响(因此对相图的影响)仅是熵的一半。 [参考:24]

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