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首页> 外文期刊>Bulletin of the American Physical Society >APS -APS March Meeting 2017 - Event - Cubic scaling $GW$: towards fast quasiparticle calculations
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APS -APS March Meeting 2017 - Event - Cubic scaling $GW$: towards fast quasiparticle calculations

机译:APS -APS 2017年3月会议-事件-三次缩放$ GW $:用于快速准粒子计算

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Within the framework of the full potential projector-augmented wave methodology, we present a promising low-scaling $GW$ implementation. It allows for quasiparticle calculations with a scaling that is cubic in the system size and linear in the number of $k$ points used to sample the Brillouin zone. This is achieved by calculating the polarizability and self-energy in real space and imaginary time. The transformation from the imaginary time to the frequency domain is done by an efficient discrete Fourier transformation with only a few nonuniform grid points. Fast Fourier transformations are used to go from real space to reciprocal space and vice versa. The analytic continuation from the imaginary to the real frequency axis is performed by exploiting Thiele's reciprocal difference approach. Finally, the method is applied successfully to predict the quasiparticle energies and spectral functions of typical semiconductors (Si, GaAs, SiC, and ZnO), insulators (C, BN, MgO, and LiF), and metals (Cu and SrVO$_3$). The results are compared with conventional $GW$ calculations. Good agreement is achieved, highlighting the strength of present method.
机译:在完整的潜在投影机增强波方法的框架内,我们提出了一种有前景的低规模$ GW $实现方案。它允许对准粒子进行计算,其缩放比例在系统大小上为立方,而在用于采样布里渊区的$ k $点数中则为线性。这是通过计算实际空间和假想时间的极化率和自能来实现的。从虚数时间到频域的变换是通过仅具有几个不均匀网格点的有效离散傅里叶变换完成的。快速傅立叶变换用于从真实空间到倒数空间,反之亦然。通过利用Thiele的倒数差异法,可以实现从虚轴到实频率轴的解析连续。最后,该方法成功地应用于预测典型半导体(Si,GaAs,SiC和ZnO),绝缘体(C,BN,MgO和LiF)以及金属(Cu和SrVO $ _3 $)的准粒子能量和光谱函数)。将结果与传统的$ GW $计算结果进行比较。达成了良好的协议,突出了本方法的优势。

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