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Self-consistent Green's function embedding for advanced electronic structure methods based on a dynamical mean-field concept

机译:基于动态平均场概念的先进电子结构方法的自洽格林函数嵌入

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摘要

We present an embedding scheme for periodic systems that facilitates the treatment of the physically important part (here a unit cell or a supercell) with advanced electronic structure methods, that are computationally too expensive for periodic systems. The rest of the periodic system is treated with computationally less demanding approaches, e.g., Kohn-Sham density-functional theory, in a self-consistent manner. Our scheme is based on the concept of dynamical mean-field theory formulated in terms of Green's functions. Our real-space dynamical mean-field embedding scheme features two nested Dyson equations, one for the embedded cluster and another for the periodic surrounding. The total energy is computed from the resulting Green's functions. The performance of our scheme is demonstrated by treating the embedded region with hybrid functionals and many-body perturbation theory in the GW approach for simple bulk systems. The total energy and the density of states converge rapidly with respect to the computational parameters and approach their bulk limit with increasing cluster (i.e., computational supercell) size.
机译:我们提出了一种用于周期性系统的嵌入方案,该方案通过先进的电子结构方法促进了对物理上重要的部分(此处是单元电池或超级电池)的处理,这对于周期性系统而言在计算上过于昂贵。周期系统的其余部分以计算量较少的方法(例如,Kohn-Sham密度泛函理论)以自洽的方式处理。我们的方案基于以格林函数表示的动态平均场理论的概念。我们的真实空间动态平均场嵌入方案具有两个嵌套的戴森方程,一个用于嵌入式簇,另一个用于周期性周围环境。根据生成的格林函数计算总能量。我们的方案的性能通过在简单批量系统的GW方法中使用混合功能和多体摄动理论处理嵌入式区域来证明。总能量和状态密度相对于计算参数迅速收敛,并且随着簇(即,计算超级单元)尺寸的增加而接近其体积极限。

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  • 来源
    《Physical review. B, Condensed Matter And Materals Physics》 |2016年第16期|165106.1-165106.15|共15页
  • 作者单位

    Fritz-Haber-Institut der Max-Planck-Gesellschaft, Faradayweg 4-6, D-14195 Berlin, Germany;

    Fritz-Haber-Institut der Max-Planck-Gesellschaft, Faradayweg 4-6, D-14195 Berlin, Germany,Key Laboratory of Quantum Information, University of Science and Technology of China, Hefei 230026, China;

    Fritz-Haber-Institut der Max-Planck-Gesellschaft, Faradayweg 4-6, D-14195 Berlin, Germany;

    Fritz-Haber-Institut der Max-Planck-Gesellschaft, Faradayweg 4-6, D-14195 Berlin, Germany,COMP/Department of Applied Physics, Aalto University, P.O. Box 11100, Aalto FI-00076, Finland;

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