Emergence of Generic Entanglement Structure in Doped Matchgate Circuits

Fuente: arXiv
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Hauptverfasser: Paviglianiti, Alessio, Lumia, Luca, Tirrito, Emanuele, Silva, Alessandro, Collura, Mario, Turkeshi, Xhek, Lami, Guglielmo
Format: Preprint
Veröffentlicht: 2025
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author Paviglianiti, Alessio
Lumia, Luca
Tirrito, Emanuele
Silva, Alessandro
Collura, Mario
Turkeshi, Xhek
Lami, Guglielmo
author_facet Paviglianiti, Alessio
Lumia, Luca
Tirrito, Emanuele
Silva, Alessandro
Collura, Mario
Turkeshi, Xhek
Lami, Guglielmo
contents Free fermionic Gaussian, a.k.a. matchgate, random circuits exhibit atypical behavior compared to generic interacting systems. They produce anomalously slow entanglement growth, characterized by diffusive scaling $S(t) \sim \sqrt{t}$, and evolve into volume-law entangled states at late times, $S \sim N$, which are highly unstable to measurements. Here, we investigate how doping such circuits with non-Gaussian resources (gates) restores entanglement structures of typical dynamics. We demonstrate that ballistic entanglement growth $S(t) \sim t$ is recovered after injecting an extensive total amount of non-Gaussian gates, also restoring Kardar-Parisi-Zhang fluctuations. When the evolution is perturbed with measurements, we uncover a measurement-induced phase transition between an area-law and a power-law entangled phase, $S \sim N^α$, with $α$ controlled by the doping. A genuine volume-law entangled phase is recovered only when non-Gaussian gates are injected at an extensive rate. Our findings bridge the dynamics of free and interacting fermionic systems, identifying non-Gaussianity as a key resource driving the emergence of non-integrable behavior.
format Preprint
id arxiv_https___arxiv_org_abs_2507_12526
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Emergence of Generic Entanglement Structure in Doped Matchgate Circuits
Paviglianiti, Alessio
Lumia, Luca
Tirrito, Emanuele
Silva, Alessandro
Collura, Mario
Turkeshi, Xhek
Lami, Guglielmo
Quantum Physics
Statistical Mechanics
Strongly Correlated Electrons
Free fermionic Gaussian, a.k.a. matchgate, random circuits exhibit atypical behavior compared to generic interacting systems. They produce anomalously slow entanglement growth, characterized by diffusive scaling $S(t) \sim \sqrt{t}$, and evolve into volume-law entangled states at late times, $S \sim N$, which are highly unstable to measurements. Here, we investigate how doping such circuits with non-Gaussian resources (gates) restores entanglement structures of typical dynamics. We demonstrate that ballistic entanglement growth $S(t) \sim t$ is recovered after injecting an extensive total amount of non-Gaussian gates, also restoring Kardar-Parisi-Zhang fluctuations. When the evolution is perturbed with measurements, we uncover a measurement-induced phase transition between an area-law and a power-law entangled phase, $S \sim N^α$, with $α$ controlled by the doping. A genuine volume-law entangled phase is recovered only when non-Gaussian gates are injected at an extensive rate. Our findings bridge the dynamics of free and interacting fermionic systems, identifying non-Gaussianity as a key resource driving the emergence of non-integrable behavior.
title Emergence of Generic Entanglement Structure in Doped Matchgate Circuits
topic Quantum Physics
Statistical Mechanics
Strongly Correlated Electrons
url https://arxiv.org/abs/2507.12526