Entanglement Propagation in Integrable Heisenberg Chains from a New Lens

Fuente: arXiv
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Autori principali: Azodi, Peyman, Rabitz, Herschel A
Natura: Preprint
Pubblicazione: 2023
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author Azodi, Peyman
Rabitz, Herschel A
author_facet Azodi, Peyman
Rabitz, Herschel A
contents The exact single-magnon entanglement evolution in Heisenberg chains is obtained using the Quantum Correlation Transfer Function (QCTF) formulation. A dual, i.e., frequency and time-domain, analysis shows that the transient dynamics of individual spins' entanglement is described via a Bessel function of the first kind. Through QCTF, we bypass the evaluation of the full system's state for the purpose of obtaining entanglement. Although it is known that the observable entanglement edge is formed by the arrival of a stream of quasi-particles that travel with the maximum group velocity, we show how the early quasi-particles travel faster than the maximum group velocity of the chain and contribute to entanglement production. Our results can be extended to the multi-magnon regime, therefore opening up the means to better interpret equilibration dynamics and thermodynamics in Heisenberg chains.
format Preprint
id arxiv_https___arxiv_org_abs_2310_00717
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Entanglement Propagation in Integrable Heisenberg Chains from a New Lens
Azodi, Peyman
Rabitz, Herschel A
Quantum Physics
Statistical Mechanics
The exact single-magnon entanglement evolution in Heisenberg chains is obtained using the Quantum Correlation Transfer Function (QCTF) formulation. A dual, i.e., frequency and time-domain, analysis shows that the transient dynamics of individual spins' entanglement is described via a Bessel function of the first kind. Through QCTF, we bypass the evaluation of the full system's state for the purpose of obtaining entanglement. Although it is known that the observable entanglement edge is formed by the arrival of a stream of quasi-particles that travel with the maximum group velocity, we show how the early quasi-particles travel faster than the maximum group velocity of the chain and contribute to entanglement production. Our results can be extended to the multi-magnon regime, therefore opening up the means to better interpret equilibration dynamics and thermodynamics in Heisenberg chains.
title Entanglement Propagation in Integrable Heisenberg Chains from a New Lens
topic Quantum Physics
Statistical Mechanics
url https://arxiv.org/abs/2310.00717