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Main Authors: Aliverti-Piuri, Damiano, Chatterjee, Kaustav, Ding, Lexin, Liao, Ke, Liebert, Julia, Schilling, Christian
Format: Preprint
Published: 2024
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Online Access:https://arxiv.org/abs/2403.08045
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author Aliverti-Piuri, Damiano
Chatterjee, Kaustav
Ding, Lexin
Liao, Ke
Liebert, Julia
Schilling, Christian
author_facet Aliverti-Piuri, Damiano
Chatterjee, Kaustav
Ding, Lexin
Liao, Ke
Liebert, Julia
Schilling, Christian
contents It is the ultimate goal of this work to foster synergy between quantum chemistry and the flourishing field of quantum information theory. For this, we first translate quantum information concepts such as entanglement and correlation into the context of quantum chemical systems. In particular, we establish two conceptually distinct perspectives on `electron correlation' leading to a notion of orbital and particle correlation. We then demonstrate that particle correlation equals total orbital correlation minimized over all orbital bases. Accordingly, particle correlation resembles the minimal, thus intrinsic, complexity of many-electron wave functions while orbital correlation quantifies their complexity relative to a basis. We illustrate these concepts of intrinsic and extrinsic correlation complexity in molecular systems, which also manifests the crucial link between the two correlation pictures. Our results provide theoretical justification for the long-favored natural orbitals for simplifying electronic structures, and open new pathways for developing more efficient approaches towards the electron correlation problem.
format Preprint
id arxiv_https___arxiv_org_abs_2403_08045
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle What Can Quantum Information Theory Offer to Quantum Chemistry?
Aliverti-Piuri, Damiano
Chatterjee, Kaustav
Ding, Lexin
Liao, Ke
Liebert, Julia
Schilling, Christian
Quantum Physics
Mathematical Physics
Chemical Physics
It is the ultimate goal of this work to foster synergy between quantum chemistry and the flourishing field of quantum information theory. For this, we first translate quantum information concepts such as entanglement and correlation into the context of quantum chemical systems. In particular, we establish two conceptually distinct perspectives on `electron correlation' leading to a notion of orbital and particle correlation. We then demonstrate that particle correlation equals total orbital correlation minimized over all orbital bases. Accordingly, particle correlation resembles the minimal, thus intrinsic, complexity of many-electron wave functions while orbital correlation quantifies their complexity relative to a basis. We illustrate these concepts of intrinsic and extrinsic correlation complexity in molecular systems, which also manifests the crucial link between the two correlation pictures. Our results provide theoretical justification for the long-favored natural orbitals for simplifying electronic structures, and open new pathways for developing more efficient approaches towards the electron correlation problem.
title What Can Quantum Information Theory Offer to Quantum Chemistry?
topic Quantum Physics
Mathematical Physics
Chemical Physics
url https://arxiv.org/abs/2403.08045