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Construction and solution of a Wannier-functions based Hamiltonian in the pseudopotential plane-wave framework for strongly correlated materials

机译:强相关材料在拟势平面波框架中基于Wannier函数的哈密顿量的构造和求解

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摘要

Ab initio determination of model Hamiltonian parameters for strongly correlated materials is a key issue in applying many-particle theoretical tools to real narrow-band materials. We propose a selfcontained calculation scheme to construct, with an ab initio approach, and solve such a Hamiltonian. The scheme uses a Wannier-function-basis set, with the Coulomb interaction parameter U obtained specifically for these Wannier functions via constrained Density functional theory (DFT) calculations. The Hamiltonian is solved by Dynamical Mean-Field Theory (DMFT) with the effective impurity problem treated by the Quantum Monte Carlo (QMC) method. Our scheme is based on the pseudopotential plane-wave method, which makes it suitable for developments addressing the challenging problem of crystal structural relaxations and transformations due to correlation effects. We have applied our scheme to the "charge transfer insulator" material nickel oxide and demonstrate a good agreement with the experimental photoemission spectra.
机译:从头开始确定强相关材料的模型哈密顿量参数是将多粒子理论工具应用于实际窄带材料的关键问题。我们提出了一个从头算的方法来构造一个自包含的计算方案,并解决这种哈密顿量。该方案使用基于Wannier函数的集合,并通过约束密度泛函理论(DFT)计算为这些Wannier函数专门获得了库仑相互作用参数U。用动力学平均场理论(DMFT)求解哈密顿量,并用量子蒙特卡洛(QMC)方法处理有效杂质问题。我们的方案基于伪势平面波方法,使其适合解决因相关效应而导致的晶体结构弛豫和转变这一具有挑战性的问题。我们已将我们的方案应用于“电荷转移绝缘体”材料氧化镍,并证明与实验光发射光谱具有良好的一致性。

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