Department of Chemistry, University of Chicago, Chicago, Illinois 60637, USA.
Pritzker School of Molecular Engineering, University of Chicago, Chicago, Illinois 60637, USA.
J Chem Phys. 2019 Dec 14;151(22):224102. doi: 10.1063/1.5126214.
Recently, it was shown that the calculation of quasiparticle energies using the GW approximation can be performed without computing explicitly any virtual electronic states, by expanding the Green function and screened Coulomb interaction in terms of the eigenstates of the static dielectric matrix. Avoiding the evaluation of virtual electronic states leads to improved efficiency and ease of convergence of GW calculations. Here, we propose a further improvement of the efficiency of these calculations, based on an approximation of density-density response functions of molecules and solids. The approximation relies on the calculation of a subset of eigenvectors of the dielectric matrix using the kinetic operator instead of the full Hamiltonian, and it does not lead to any substantial loss of accuracy for the quasiparticle energies. The computational savings introduced by this approximation depend on the system, and they become more substantial as the number of electrons increases.
最近表明,通过展开格林函数和屏蔽库仑相互作用的本征态,可以在不明确计算任何虚拟电子态的情况下,使用 GW 近似来计算准粒子能。避免评估虚拟电子态可以提高 GW 计算的效率和易于收敛性。在这里,我们提出了一种进一步提高这些计算效率的方法,该方法基于对分子和固体的密度-密度响应函数的近似。该近似依赖于使用动力学算符而不是全哈密顿量来计算介电矩阵的一组本征向量,并且不会导致准粒子能的任何实质性精度损失。这种近似带来的计算节省取决于系统,并且随着电子数的增加而变得更加显著。