Extracting Many-Body Quantum Resources within One-Body Reduced Density Matrix Functional Theory

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Hauptverfasser: Benavides-Riveros, Carlos L., Wasak, Tomasz, Recati, Alessio
Format: Preprint
Veröffentlicht: 2023
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author Benavides-Riveros, Carlos L.
Wasak, Tomasz
Recati, Alessio
author_facet Benavides-Riveros, Carlos L.
Wasak, Tomasz
Recati, Alessio
contents Quantum Fisher information (QFI) is a central concept in quantum sciences used to quantify the ultimate precision limit of parameter estimation, detect quantum phase transitions, witness genuine multipartite entanglement, or probe nonlocality. Despite this widespread range of applications, computing the QFI value of quantum many-body systems is, in general, a very demanding task. Here we combine ideas from functional theories and quantum information to develop a novel functional framework for the QFI of fermionic and bosonic ground states. By relying upon the constrained-search approach, we demonstrate that the QFI matricial values can universally be determined by the one-body reduced density matrix (1-RDM), avoiding thus the use of exponentially large wave functions. Furthermore, we show that QFI functionals can be determined from the universal 1-RDM functional by calculating its derivatives with respect to the coupling strengths, becoming thus the generating functional of the QFI. We showcase our approach with the Bose-Hubbard model and present exact analytical and numerical QFI functionals. Our results provide the first connection between the one-body reduced density matrix functional theory and the quantum Fisher information.
format Preprint
id arxiv_https___arxiv_org_abs_2311_12596
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Extracting Many-Body Quantum Resources within One-Body Reduced Density Matrix Functional Theory
Benavides-Riveros, Carlos L.
Wasak, Tomasz
Recati, Alessio
Quantum Physics
Strongly Correlated Electrons
Chemical Physics
Computational Physics
Quantum Fisher information (QFI) is a central concept in quantum sciences used to quantify the ultimate precision limit of parameter estimation, detect quantum phase transitions, witness genuine multipartite entanglement, or probe nonlocality. Despite this widespread range of applications, computing the QFI value of quantum many-body systems is, in general, a very demanding task. Here we combine ideas from functional theories and quantum information to develop a novel functional framework for the QFI of fermionic and bosonic ground states. By relying upon the constrained-search approach, we demonstrate that the QFI matricial values can universally be determined by the one-body reduced density matrix (1-RDM), avoiding thus the use of exponentially large wave functions. Furthermore, we show that QFI functionals can be determined from the universal 1-RDM functional by calculating its derivatives with respect to the coupling strengths, becoming thus the generating functional of the QFI. We showcase our approach with the Bose-Hubbard model and present exact analytical and numerical QFI functionals. Our results provide the first connection between the one-body reduced density matrix functional theory and the quantum Fisher information.
title Extracting Many-Body Quantum Resources within One-Body Reduced Density Matrix Functional Theory
topic Quantum Physics
Strongly Correlated Electrons
Chemical Physics
Computational Physics
url https://arxiv.org/abs/2311.12596