Abstract
Generalized Hartree Fock (GHF) is a long-established electronic structure method that can lower the energy (compared to spin-restricted variants) by breaking physical wavefunction symmetries, namely S^2 and Sz. After an exposition of GHF theory, we assess the use of GHF trial wavefunctions in phaseless auxiliary field quantum Monte Carlo (ph-AFQMC-G) calculations of strongly correlated molecular systems including symmetrically stretched hydrogen rings, carbon dioxide, and dioxygen. We find comparable or better accuracy than CCSD(T) with unrestricted HF and GHF references, and consistently smooth dissociation curves -- a remarkable result given the relative scalability of ph-AFQMC-G to larger system sizes. The present exploration of model strongly correlated systems marks a promising starting point for future studies of more chemically-relevant molecules, and demonstrates that ph-AFQMC-G provides a highly accurate (and, in contrast to active-space-based trials, relatively black box and always size-consistent) description of challenging systems exhibiting, e.g., antiferromagnetic coupling and/or geometric spin frustration.
Supplementary materials
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Data spreadsheet
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All raw data used throughout the paper; for the small rings this includes the GHF, UHF and ROHF energies, the associated coupled cluster energies at CCSD and CCSD(T) level, the full CI reference values, the non-collinearity metric and ph-AFQMC values with both UHF and GHF trials. For H19 and H20 we provide GHF, UHF, their associated CCSD and CCSD(T) and ph-AFQMC results and CIPSI reference values (both linear and non-linear fit). For O2 and CO2 we provide the GHF, GCCSD, GCCSD(T) ph-AFQMC with a GHF trial and CASSCF trials for triplet and singlet states.
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Supplementary information
Description
Computational details on all ph-AFQMC calculations, potential energy surfaces for hydrogen rings, ph-AFQMC equilibration time plots for H8, alternate GHF GCCSD(T) and ph-AFQMC energies for O2 at r(O-O)=2.25A and CIPSI extrapolated Full CI energies and convergence plots
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