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Auxiliary coherent medium theory for lattice vibrations in random binary alloys with mass and force-constant disorders

机译:辅助相干介质理论,用于质量和力常数紊乱的随机二元合金中的晶格振动

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摘要

The inevitable and random impurities or defects can significantly influence the lattice-vibrational properties of materials and devices. Thus, the capability of effectively treating disorder effects is indispensable for theoretical simulations. In this paper, we report an auxiliary coherent medium theory, in the framework of multiple scattering theory, to simulate disordered vibrational systems containing both mass and force-constant disorders. In this method, the physical Green's function is related to an auxiliary Green's function by introducing a separable force-constant model to describe disordered systems. As an important result, the force-constant disorder can be transformed to a diagonal-like disorder in the auxiliary Hamiltonian while maintaining the important force-constant sum rule. In combination with the single-site and cluster coherent potential approximation, the configurational average over the auxiliary Green's function can be performed to obtain the configuration-averaged physical properties. To demonstrate the effectiveness of this method, we apply it to a one-dimensional harmonic chain with atomic disorders and find our calculations agree very well with the exact results for a wide range of mass and force constants. Moreover, we show that the phonon transport property of disordered devices can be derived based on the auxiliary Green's function formalism in combination with vertex corrections. The auxiliary coherent medium theory features easy implementation and feasible incorporation with diagrammatic technique in many-body perturbation and various cluster approximations, providing an important approach to analyze disorder effects on the vibrational properties. Moreover, it is also straightforward to apply the present formalism to treat the general atomic disorder in electronic systems.
机译:不可避免和随机的杂质或缺陷会严重影响材料和设备的晶格振动特性。因此,有效地治疗疾病的能力对于理论模拟是必不可少的。在本文中,我们报告了在多重散射理论框架下的辅助相干介质理论,以模拟包含质量和力常数紊乱的无序振动系统。在这种方法中,物理格林函数通过引入可分离的力常数模型来描述无序系统而与辅助格林函数相关。重要的结果是,在保持重要的力常数求和规则的同时,辅助哈密顿量中的力常数无序可以转化为对角线状的无序。结合单点和簇相干电势近似,可以对辅助格林函数进行构型平均,以获得构型平均的物理性能。为了证明该方法的有效性,我们将其应用于具有原子紊乱的一维谐波链,发现我们的计算结果与各种质量和力常数的精确结果非常吻合。此外,我们表明无序设备的声子传输特性可以基于辅助格林函数形式主义与顶点校正相结合而得出。辅助相干介质理论在多体摄动和各种聚类近似中具有易于实现且易于与图解技术结合的特点,为分析扰动对振动特性的影响提供了重要的方法。此外,将本形式论应用于治疗电子系统中的一般原子混乱也是很直接的。

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  • 来源
    《Physical review》 |2019年第13期|134202.1-134202.9|共9页
  • 作者单位

    ShanghaiTech Univ, Sch Phys Sci & Technol, Shanghai 201210, Peoples R China;

    ShanghaiTech Univ, Sch Phys Sci & Technol, Shanghai 201210, Peoples R China;

    ShanghaiTech Univ, Sch Phys Sci & Technol, Shanghai 201210, Peoples R China;

    ShanghaiTech Univ, Sch Phys Sci & Technol, Shanghai 201210, Peoples R China;

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