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用最大局域化 Wannier 函数确定岩盐-CdO 的准粒子能带结构。

Quasiparticle band structure of rocksalt-CdO determined using maximally localized Wannier functions.

机构信息

CMT-group and EMAT, Departement Fysica, Universiteit Antwerpen, Groenenborgerlaan 171, B-2020 Antwerpen, Belgium.

出版信息

J Phys Condens Matter. 2013 Jan 23;25(3):035501. doi: 10.1088/0953-8984/25/3/035501. Epub 2012 Dec 12.

Abstract

CdO in the rocksalt structure is an indirect band gap semiconductor. Thus, in order to determine its band gap one needs to calculate the complete band structure. However, in practice, the exact evaluation of the quasiparticle band structure for the large number of k-points which constitute the different symmetry lines in the Brillouin zone can be an extremely demanding task compared to the standard density functional theory (DFT) calculation. In this paper we report the full quasiparticle band structure of CdO using a plane-wave pseudopotential approach. In order to reduce the computational effort and time, we make use of maximally localized Wannier functions (MLWFs). The MLWFs offer a highly accurate method for interpolation of the DFT or GW band structure from a coarse k-point mesh in the irreducible Brillouin zone, resulting in a much reduced computational effort. The present paper discusses the technical details of the scheme along with the results obtained for the quasiparticle band gap and the electron effective mass.

摘要

CdO 具有岩盐结构,属于间接带隙半导体。因此,要确定其带隙,需要计算完整的能带结构。然而,在实际中,与标准密度泛函理论(DFT)计算相比,精确评估布里渊区不同对称线上大量 k 点构成的准粒子能带结构可能是一项极其苛刻的任务。在本文中,我们采用平面波赝势方法报告了 CdO 的完整准粒子能带结构。为了降低计算工作量和时间,我们利用了最大局域化 Wannier 函数(MLWF)。MLWF 提供了一种从不可约布里渊区的粗 k 点网格中对 DFT 或 GW 能带结构进行插值的高度精确方法,从而大大降低了计算工作量。本文讨论了该方案的技术细节以及针对准粒子带隙和电子有效质量获得的结果。

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