Density Matrix Renormalization Group Approach Based on the Coupled-Cluster Downfolded Hamiltonians

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Main Authors: Bauman, Nicholas, Veis, Libor, Kowalski, Karol, Brabec, Jiri
Format: Preprint
Published: 2024
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author Bauman, Nicholas
Veis, Libor
Kowalski, Karol
Brabec, Jiri
author_facet Bauman, Nicholas
Veis, Libor
Kowalski, Karol
Brabec, Jiri
contents The Density Matrix Renormalization Group (DMRG) method has become a prominent tool for simulating strongly correlated electronic systems characterized by dominant static correlation effects. However, capturing the full scope of electronic interactions, especially for complex chemical processes, requires an accurate treatment of static and dynamic correlation effects, which remains a significant challenge in computational chemistry. This study presents a new approach integrating a Hermitian coupled-cluster-based downfolding technique, incorporating dynamic correlation into active-space Hamiltonians, with the DMRG method. By calculating the ground-state energies of these effective Hamiltonians via DMRG, we achieve a more comprehensive description of electronic structure. We demonstrate the accuracy and efficiency of this combined method for advancing simulations of strongly correlated systems using benchmark calculations on molecular systems, including N$_2$, benzene, and tetramethyleneethane (TME).
format Preprint
id arxiv_https___arxiv_org_abs_2411_07325
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Density Matrix Renormalization Group Approach Based on the Coupled-Cluster Downfolded Hamiltonians
Bauman, Nicholas
Veis, Libor
Kowalski, Karol
Brabec, Jiri
Chemical Physics
The Density Matrix Renormalization Group (DMRG) method has become a prominent tool for simulating strongly correlated electronic systems characterized by dominant static correlation effects. However, capturing the full scope of electronic interactions, especially for complex chemical processes, requires an accurate treatment of static and dynamic correlation effects, which remains a significant challenge in computational chemistry. This study presents a new approach integrating a Hermitian coupled-cluster-based downfolding technique, incorporating dynamic correlation into active-space Hamiltonians, with the DMRG method. By calculating the ground-state energies of these effective Hamiltonians via DMRG, we achieve a more comprehensive description of electronic structure. We demonstrate the accuracy and efficiency of this combined method for advancing simulations of strongly correlated systems using benchmark calculations on molecular systems, including N$_2$, benzene, and tetramethyleneethane (TME).
title Density Matrix Renormalization Group Approach Based on the Coupled-Cluster Downfolded Hamiltonians
topic Chemical Physics
url https://arxiv.org/abs/2411.07325