English

Entanglement and Absorbing-State Transitions in Interactive Quantum Dynamics

Statistical Mechanics 2024-03-15 v2 Disordered Systems and Neural Networks Quantum Physics

Abstract

Nascent quantum computers motivate the exploration of quantum many-body systems in nontraditional scenarios. For example, it has become natural to explore the dynamics of systems evolving under both unitary evolution and measurement. Such systems can undergo dynamical phase transitions in the entanglement properties of quantum trajectories conditional on the measurement outcomes. Here, we explore dynamics in which one attempts to (locally) use those measurement outcomes to steer the system toward a target state, and we study the resulting phase diagram as a function of the measurement and feedback rates. Steering succeeds when the measurement and feedback rates exceed a threshold, yielding an absorbing-state transition in the trajectory-averaged density matrix. We argue that the absorbing-state transition generally occurs at different critical parameters from the entanglement transition in individual trajectories and has distinct critical properties. The efficacy of steering depends on the nature of the target state: in particular, for local dynamics targeting long-range correlated states, steering is necessarily slow and the entanglement and steering transitions are well separated in parameter space.

Keywords

Cite

@article{arxiv.2211.12526,
  title  = {Entanglement and Absorbing-State Transitions in Interactive Quantum Dynamics},
  author = {Nicholas O'Dea and Alan Morningstar and Sarang Gopalakrishnan and Vedika Khemani},
  journal= {arXiv preprint arXiv:2211.12526},
  year   = {2024}
}

Comments

v2 - published version

R2 v1 2026-06-28T06:37:24.625Z