Multi-Body Entanglement and Information Rearrangement in Nuclear Many-Body Systems
S. Momme Hengstenberg, Caroline E. P. Robin, Martin J. Savage

TL;DR
This paper investigates how effective-model-space calculations can efficiently capture multi-particle entanglement in nuclear many-body systems, using a generalized Lipkin-Meshkov-Glick model to demonstrate improved convergence and correlation measures.
Contribution
It introduces an entanglement-focused effective approach with Hilbert space truncation and variational rotations, showing exponential energy convergence and better entanglement measure recovery compared to naive methods.
Findings
Effective models suppress entanglement entropies and mutual information.
Low cut-offs can recover exact results for entanglement measures.
Significant improvement in convergence of multi-body entanglement measures.
Abstract
We examine how effective-model-space (EMS) calculations of nuclear many-body systems rearrange and converge multi-particle entanglement. The generalized Lipkin-Meshkov-Glick (LMG) model is used to motivate and provide insight for future developments of entanglement-driven descriptions of nuclei. The effective approach is based on a truncation of the Hilbert space together with a variational rotation of the qubits (spins), which constitute the relevant elementary degrees of freedom. The non-commutivity of the rotation and truncation allows for an exponential improvement of the energy convergence throughout much of the model space. Our analysis examines measures of correlations and entanglement, and quantifies their convergence with increasing cut-off. We focus on one- and two-spin entanglement entropies, mutual information, and -tangles for to estimate multi-body entanglement.…
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Taxonomy
TopicsNuclear physics research studies · Quantum, superfluid, helium dynamics · Stellar, planetary, and galactic studies
