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Interplay of entanglement structures and stabilizer entropy in spin models

by Michele Viscardi, Marcello Dalmonte, Alioscia Hamma, Emanuele Tirrito

Submission summary

Authors (as registered SciPost users): Marcello Dalmonte · Michele Viscardi
Submission information
Preprint Link: scipost_202506_00024v2  (pdf)
Date submitted: Dec. 11, 2025, 10:34 a.m.
Submitted by: Michele Viscardi
Submitted to: SciPost Physics Core
Ontological classification
Academic field: Physics
Specialties:
  • Condensed Matter Physics - Computational
  • Quantum Physics
Approach: Computational

Abstract

Understanding the interplay between nonstabilizerness and entanglement is crucial for uncovering the fundamental origins of quantum complexity. Recent studies have proposed entanglement spectral quantities, such as antiflatness of the entanglement spectrum and entanglement capacity, as effective complexity measures, establishing direct connections to stabilizer Rényi entropies. In this work, we systematically investigate quantum complexity across a diverse range of spin models, analyzing how entanglement structure and nonstabilizerness serve as distinctive signatures of quantum phases. By studying entanglement spectra and stabilizer entropy measures, we demonstrate that these quantities consistently differentiate between distinct phases of matter. Specifically, we provide a detailed analysis of spin chains including the XXZ model, the transverse-field XY model, its extension with Dzyaloshinskii-Moriya interactions, as well as the Cluster Ising and Cluster XY models. Our findings reveal that entanglement spectral properties and magic-based measures serve as intertwined, robust indicators of quantum phase transitions, highlighting their significance in characterizing quantum complexity in many-body systems.

Current status:
In refereeing

Reports on this Submission

Report #1 by Anonymous (Referee 1) on 2025-12-11 (Invited Report)

Report

The authors have adequately addressed all my concerns from the previous version of the manuscript, and I believe it is now ready for publication. In particular, regarding my question 4 on the applicability of the separability circle for open boundary conditions, the authors have provided convincing evidence that the ground state approaches a separable state in the thermodynamic limit, even in OBC where translational symmetry does not hold. I am satisfied with their clarification on this point.

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