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Structure, mechanical and thermodynamic stability of vacancy clusters in Cu

机译:铜中空位团簇的结构,力学和热力学稳定性

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The atomic structure, mechanical and thermodynamic stability of vacancy clusters in Cu are studied by atomistic simulations. The most stable atomic configuration of small vacancy clusters is determined. The mechanical stability of the vacancy clusters is examined by applying uniaxial and volumetric tensile strains to the system. The yield stress and yield strain of the system are significantly reduced compared with the perfect lattice. The dependence of vacancy formation and binding energy as a function of strain is explored and can be understood from the liquid-drop model. We find that the formation energy of the vacancy clusters decreases monotonically as a function of the uniaxial strain, while the formation energy increases first then decreases under the volumetric tensile strain. The thermodynamic stability of the vacancy clusters is analyzed by calculating the Helmholtz free binding energy and the total probability of dissociation of the vacancy clusters at 300 and 900 K under uniaxial and volumetric strains. We find that although most of the vacancy clusters appear to be thermodynamically stable, some of the intermediate sized clusters have a high probability of dissociation into smaller clusters.
机译:通过原子模拟研究了铜中空位团簇的原子结构,力学和热力学稳定性。确定了小空位簇的最稳定原子构型。通过向系统施加单轴拉伸应变和体积拉伸应变来检查空位簇的机械稳定性。与理想晶格相比,系统的屈服应力和屈服应变显着降低。探索了空位形成和结合能作为应变的函数的依赖性,并且可以从液滴模型中理解。我们发现,空位团簇的形成能随单轴应变的变化而单调减小,而在体积拉伸应变下,形成能先增大然后减小。通过计算亥姆霍兹自由结合能以及在单轴和体积应变下300和900 K时空位簇解离的总概率,分析了空位簇的热力学稳定性。我们发现,尽管大多数空位簇似乎是热力学稳定的,但某些中等规模的簇却具有较高的解离成较小簇的可能性。

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