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Entanglement complexity of the Rokhsar-Kivelson-sign wavefunctions

Authors :
Stefano Piemontese
Tommaso Roscilde
Alioscia Hamma
Laboratoire de Physique de l'ENS Lyon (Phys-ENS)
École normale supérieure de Lyon (ENS de Lyon)-Université de Lyon-Centre National de la Recherche Scientifique (CNRS)
Source :
Phys.Rev.B, Phys.Rev.B, 2023, 107 (13), pp.134202. ⟨10.1103/PhysRevB.107.134202⟩
Publication Year :
2023
Publisher :
American Physical Society (APS), 2023.

Abstract

In this paper we study the transitions of entanglement complexity in an exemplary family of states - the Rokhsar-Kivelson-sign wavefunctions - whose degree of entanglement is controlled by a single parameter. This family of states is known to feature a transition between a phase exhibiting volume-law scaling of entanglement entropy and a phase with sub-extensive scaling of entanglement, reminiscent of the many-body-localization transition of disordered quantum Hamiltonians [Physical Review B 92, 214204 (2015)]. We study the singularities of the Rokhsar-Kivelson-sign wavefunctions and their entanglement complexity across the transition using several tools from quantum information theory: fidelity metric; entanglement spectrum statistics; entanglement entropy fluctuations; stabilizer R\'enyi Entropy; and the performance of a disentangling algorithm. Across the whole volume-law phase the states feature universal entanglement spectrum statistics. Yet a "super-universal" regime appears for small values of the control parameter in which all metrics become independent of the parameter itself; the entanglement entropy as well as the stabilizer R\'enyi entropy appear to approach their theoretical maximum; the entanglement fluctuations scale to zero as in output states of random universal circuits, and the disentangling algorithm has essentially null efficiency. All these indicators consistently reveal a complex pattern of entanglement. In the sub-volume-law phase, on the other hand, the entanglement spectrum statistics is no longer universal, entanglement fluctuations are larger and exhibiting a non-universal scaling; and the efficiency of the disentangling algorithm becomes finite. Our results, based on model wavefunctions, suggest that a similar combination of entanglement scaling properties and of entanglement complexity features may be found in high-energy Hamiltonian eigenstates.<br />Comment: Journal version. Added 1 paragraph and 1 image

Details

ISSN :
24699969 and 24699950
Volume :
107
Database :
OpenAIRE
Journal :
Physical Review B
Accession number :
edsair.doi.dedup.....732e8d747ee82d1e34975b6a54d61ad6
Full Text :
https://doi.org/10.1103/physrevb.107.134202