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Microscopic polarization and magnetization fields in extended systems

机译:扩展系统中的微观偏振和磁化字段

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We introduce microscopic polarization and magnetization fields at each site of an extended system, as well as free charge and current density fields associated with charge movement from site to site, by employing a lattice gauge approach based on a set of orthogonal orbitals associated with each site. These microscopic fields are defined using a single-particle electron Green function, and the equations governing its evolution under excitation by an electromagnetic field at arbitrary frequency involve the electric and magnetic fields rather than the scalar and vector potentials. If the sites are taken to be far from each other, we recover the limit of isolated atoms. For an infinite crystal, we choose the orbitals to be maximally localized Wannier functions, and in the long-wavelength limit we recover the expected linear response of an insulator, including the zero frequency transverse conductivity of a topologically nontrivial insulator. For a topologically trivial insulator, we recover the expected expressions for the macroscopic polarization and magnetization in the ground state and find that the linear response to excitation at arbitrary frequency is described solely by the microscopic polarization and magnetization fields. For very general optical response calculations, the microscopic fields necessarily satisfy charge conservation, even under basis truncation, and do not suffer from the false divergences at zero frequency that can plague response calculations using other approaches.
机译:我们,通过采用基于一组与每个站点关联正交轨道的晶格规方法引入在扩展的系统的各部位与电荷运动从站点到站点相关联的微观极化和磁化场,以及自由电荷和电流密度领域。这些微观场使用单粒子电子绿色功能来定义,并且在任意频率下通过电磁场激励控制其演化的方程涉及电场和磁场而不是标量和矢量电位。如果距离彼此的地方很远,我们恢复了隔离原子的极限。对于无限晶体,我们选择轨道是最大局部局部化的WANNIER功能,并且在长波长限制中,我们恢复绝缘体的预期线性响应,包括拓扑非学历绝缘体的零频率横向导电性。对于拓扑普通绝缘体,我们在地状态下恢复宏观偏振和磁化的预期表达,并发现仅通过微观偏振和磁化区域来描述对任意频率的激励的线性响应。对于非常一般的光学响应计算,显微镜领域必须满足电荷守恒,即使在截断的基础截短时,也不会遭受零频率的错误分歧,可以使用其他方法扰乱响应计算。

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