English

Measurement-Driven Phase Transition within a Volume-Law Entangled Phase

Quantum Physics 2020-05-08 v1 Disordered Systems and Neural Networks Statistical Mechanics High Energy Physics - Theory

Abstract

We identify a phase transition between two kinds of volume-law entangled phases in non-local but few-body unitary dynamics with local projective measurements. In one phase, a finite fraction of the system belongs to a fully-entangled state, one for which no subsystem is in a pure state, while in the second phase, the steady-state is a product state over extensively many, finite subsystems. We study this "separability" transition in a family of solvable models in which we analytically determine the transition point, the evolution of certain entanglement properties of interest, and relate this to a mean-field percolation transition. Since the entanglement entropy density does not distinguish these phases, we introduce the entangling power - which measures whether local measurements outside of two finite subsystems can boost their mutual information - as an order parameter, after considering its behavior in tensor network states, and numerically studying its behavior in a model of Clifford dynamics with measurements. We argue that in our models, the separability transition coincides with a transition in the computational "hardness" of classically determining the output probability distribution for the steady-state in a certain basis of product states. A prediction for this distribution, which is accurate in the separable phase, and should deviate from the true distribution in the fully-entangled phase, provides a possible benchmarking task for quantum computers.

Keywords

Cite

@article{arxiv.2005.03052,
  title  = {Measurement-Driven Phase Transition within a Volume-Law Entangled Phase},
  author = {Sagar Vijay},
  journal= {arXiv preprint arXiv:2005.03052},
  year   = {2020}
}

Comments

14 pages, 8 figures

R2 v1 2026-06-23T15:21:51.789Z