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Shlomit Jacobi

Publications and source records attributed to Shlomit Jacobi.

2 recordsLinked to original sources

Variational grand-canonical electronic structure method for open systems.

An ab initio method is developed for variational grand-canonical molecular electronic structure of open systems based on the Gibbs-Peierls-Boguliobov inequality. We describe the theory and a practical method for performing the calculations within standard quantum chemistry codes using Gaussian basis sets. The computational effort scales similarly to the ground-state Hartree-Fock method. The quality of the approximation is studied on a hydrogen molecule by comparing to the exact Gibbs free energy, computed using full configuration-interaction calculations. We find the approximation quite accurate, with errors similar to those of the Hartree-Fock method for ground-state (zero-temperature) calculations. A further demonstration is given of the temperature effects on the bending potential curve for water. Some future directions and applications of the method are discussed. Several appendices give the mathematical and algorithmic details of the method.

Journal Article↗

The well-tempered auxiliary-field Monte Carlo.

The auxiliary-field Monte Carlo (AFMC) is a method for computing ground-state and excited-state energies and other properties of electrons in molecules. For a given basis set, AFMC is an approximation to full-configuration interaction and the accuracy is determined predominantly by an inverse temperature "beta" parameter. A considerable amount of the dynamical correlation energy is recovered even at small values of beta. Yet, nondynamical correlation energy is inefficiently treated by AFMC. This is because the statistical error grows with beta, warranting increasing amount of Monte Carlo sampling. A recently introduced multi-determinant variant of AFMC is studied, and the method can be tuned by balancing the sizes of the determinantal space and the beta-parameter with respect to a predefined target accuracy. The well-tempered AFMC is considerably more efficient than a naive AFMC. As a welcome "byproduct" low lying excitation energies of the molecule are supplied as well. We demonstrate the principles on dissociating hydrogen molecule and torsion of ethylene where we calculate the (unoptimized) torsional barrier and the vertical singlet-triplet splitting.

Journal Article↗