The GW Miracle in Many-Body Perturbation Theory for the Ionization Potential of Molecules

被引:54
作者
Bruneval, Fabien [1 ]
Dattani, Nike [2 ]
van Setten, Michiel J. [3 ]
机构
[1] Univ Paris Saclay, CEA, Serv Rech Met Phys, Direct Energies, Paris, France
[2] HPQC Labs, Waterloo, ON, Canada
[3] IMEC, Leuven, Belgium
关键词
electronic structure ab initio calculations; many-body ab initio structure; ionization potential (IP); density-functional theory (DFT); Green's function (GF); feynman diagram expansion; coupled-cluster method; high-precision benchmarks; QUASI-PARTICLE CALCULATIONS; GREENS-FUNCTION; ELECTRON-GAS; BASIS-SETS; BAND-GAPS; EXCITATIONS; ATOMS; GW100; SEMICONDUCTORS; APPROXIMATION;
D O I
10.3389/fchem.2021.749779
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
We use the GW100 benchmark set to systematically judge the quality of several perturbation theories against high-level quantum chemistry methods. First of all, we revisit the reference CCSD(T) ionization potentials for this popular benchmark set and establish a revised set of CCSD(T) results. Then, for all of these 100 molecules, we calculate the HOMO energy within second and third-order perturbation theory (PT2 and PT3), and, GW as post-Hartree-Fock methods. We found GW to be the most accurate of these three approximations for the ionization potential, by far. Going beyond GW by adding more diagrams is a tedious and dangerous activity: We tried to complement GW with second-order exchange (SOX), with second-order screened exchange (SOSEX), with interacting electron-hole pairs (W-TDHF), and with a GW density-matrix (gamma(GW)). Only the gamma(GW) result has a positive impact. Finally using an improved hybrid functional for the non-interacting Green's function, considering it as a cheap way to approximate self-consistency, the accuracy of the simplest GW approximation improves even more. We conclude that GW is a miracle: Its subtle balance makes GW both accurate and fast.
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页数:12
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