Quantum magic of strongly correlated fermions $-$ the Hubbard dimer

Fuente: arXiv
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Autori principali: Zavatti, Edoardo, Bellomia, Gabriele, Capone, Massimo
Natura: Preprint
Pubblicazione: 2026
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author Zavatti, Edoardo
Bellomia, Gabriele
Capone, Massimo
author_facet Zavatti, Edoardo
Bellomia, Gabriele
Capone, Massimo
contents We study the non-stabilizerness (quantum magic) content of the Hubbard dimer, an analytically solvable, yet completely non-trivial, model of strongly correlated fermions. We can access zero- and finite-temperature properties as well as the time evolution in a quantum quench protocol. We evaluate local and nonlocal non-stabilizerness using both the robustness of magic and the stabilizer Renyi entropy, demonstrating how the latter often fails in detecting the mixed stabilizer states that are typically found in this kind of systems. Finally, we compare the non-stabilizerness with other genuine resources of quantum-state complexity, i.e., the fermionic non-Gaussianity and the superselected two-site entanglement. Our findings corroborate the notion of non-stabilizerness as a fundamentally different quantum resource, able to give profound insights that are missed by more traditional information-theoretic quantities.
format Preprint
id arxiv_https___arxiv_org_abs_2605_18494
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Quantum magic of strongly correlated fermions $-$ the Hubbard dimer
Zavatti, Edoardo
Bellomia, Gabriele
Capone, Massimo
Quantum Physics
Strongly Correlated Electrons
We study the non-stabilizerness (quantum magic) content of the Hubbard dimer, an analytically solvable, yet completely non-trivial, model of strongly correlated fermions. We can access zero- and finite-temperature properties as well as the time evolution in a quantum quench protocol. We evaluate local and nonlocal non-stabilizerness using both the robustness of magic and the stabilizer Renyi entropy, demonstrating how the latter often fails in detecting the mixed stabilizer states that are typically found in this kind of systems. Finally, we compare the non-stabilizerness with other genuine resources of quantum-state complexity, i.e., the fermionic non-Gaussianity and the superselected two-site entanglement. Our findings corroborate the notion of non-stabilizerness as a fundamentally different quantum resource, able to give profound insights that are missed by more traditional information-theoretic quantities.
title Quantum magic of strongly correlated fermions $-$ the Hubbard dimer
topic Quantum Physics
Strongly Correlated Electrons
url https://arxiv.org/abs/2605.18494