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Auteurs principaux: Santra, Gopal Chandra, Mildenberger, Julius, Ballini, Edoardo, Bottarelli, Alberto, Wauters, Matteo M., Hauke, Philipp
Format: Preprint
Publié: 2025
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Accès en ligne:https://arxiv.org/abs/2510.07385
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author Santra, Gopal Chandra
Mildenberger, Julius
Ballini, Edoardo
Bottarelli, Alberto
Wauters, Matteo M.
Hauke, Philipp
author_facet Santra, Gopal Chandra
Mildenberger, Julius
Ballini, Edoardo
Bottarelli, Alberto
Wauters, Matteo M.
Hauke, Philipp
contents Lattice gauge theories (LGTs) represent one of the most ambitious goals of quantum simulation. From a practical implementation perspective, non-Abelian theories present significantly tougher challenges than Abelian LGTs. However, it is unknown whether this is also reflected in increased values of quantum resources relating to the complexity of simulating quantum many-body models. Here, we compare three paradigmatic measures of quantum resources -- stabilizer Rényi entropy, generalized geometric measure of entanglement, and fermionic antiflatness -- for pure-gauge theories on a ladder with Abelian $\mathbb{Z}_N$ as well as non-Abelian $D_3$ and SU(2) gauge symmetries. We find that non-Abelian symmetries are not necessarily inherently harder to simulate than Abelian ones, but rather the required quantum resources depend nontrivially on the interplay between the group structure, superselection sector, and encoding of the gauge constraints. Our findings help indicate where quantum advantage could emerge in simulations of LGTs, both in NISQ and fault-tolerant eras.
format Preprint
id arxiv_https___arxiv_org_abs_2510_07385
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Quantum Resources in Non-Abelian Lattice Gauge Theories: Nonstabilizerness, Multipartite Entanglement, and Fermionic Non-Gaussianity
Santra, Gopal Chandra
Mildenberger, Julius
Ballini, Edoardo
Bottarelli, Alberto
Wauters, Matteo M.
Hauke, Philipp
Quantum Physics
Strongly Correlated Electrons
High Energy Physics - Lattice
Lattice gauge theories (LGTs) represent one of the most ambitious goals of quantum simulation. From a practical implementation perspective, non-Abelian theories present significantly tougher challenges than Abelian LGTs. However, it is unknown whether this is also reflected in increased values of quantum resources relating to the complexity of simulating quantum many-body models. Here, we compare three paradigmatic measures of quantum resources -- stabilizer Rényi entropy, generalized geometric measure of entanglement, and fermionic antiflatness -- for pure-gauge theories on a ladder with Abelian $\mathbb{Z}_N$ as well as non-Abelian $D_3$ and SU(2) gauge symmetries. We find that non-Abelian symmetries are not necessarily inherently harder to simulate than Abelian ones, but rather the required quantum resources depend nontrivially on the interplay between the group structure, superselection sector, and encoding of the gauge constraints. Our findings help indicate where quantum advantage could emerge in simulations of LGTs, both in NISQ and fault-tolerant eras.
title Quantum Resources in Non-Abelian Lattice Gauge Theories: Nonstabilizerness, Multipartite Entanglement, and Fermionic Non-Gaussianity
topic Quantum Physics
Strongly Correlated Electrons
High Energy Physics - Lattice
url https://arxiv.org/abs/2510.07385