Mixed-State Measurement-Induced Phase Transitions in Imaginary-Time Dynamics

Fuente: arXiv
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Main Authors: Ding, Yi-Ming, Liu, Zenan, Tian, Xu, Wang, Zhe, Zhu, Yanzhang, Yan, Zheng
Format: Preprint
Published: 2025
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author Ding, Yi-Ming
Liu, Zenan
Tian, Xu
Wang, Zhe
Zhu, Yanzhang
Yan, Zheng
author_facet Ding, Yi-Ming
Liu, Zenan
Tian, Xu
Wang, Zhe
Zhu, Yanzhang
Yan, Zheng
contents Mixed-state phase transitions have recently attracted growing attention as a new frontier in nonequilibrium quantum matter and quantum information. In this work, we introduce the measurement-dressed imaginary-time evolution (MDITE) as a novel framework to explore mixed-state quantum phases and decoherence-driven criticality. In this setup, alternating imaginary-time evolution and projective measurements generate a competition between coherence-restoring dynamics and decoherence-inducing events. While reminiscent of monitored unitary circuits, MDITE fundamentally differs in that the physics is encoded in decoherent mixed states rather than in quantum trajectories. Using numerical simulations of the one-dimensional transverse-field Ising model and the two-dimensional columnar dimerized Heisenberg model, we demonstrate the existence of this kind of mixed-state phase transitions. Notably, these transitions appear to exhibit critical behavior inconsistent with known universality classes. In addition, we provide a diagrammatic representation of the evolving state, which naturally enables efficient studies of MDITE with quantum Monte Carlo and other many-body numerical methods, thereby extending investigations of mixed-state phase transitions to large-scale and higher-dimensional systems. Our results establish MDITE as a versatile platform for investigating mixed-state criticality and uncover new classes of decoherence-driven nonequilibrium phase transitions.
format Preprint
id arxiv_https___arxiv_org_abs_2511_04402
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Mixed-State Measurement-Induced Phase Transitions in Imaginary-Time Dynamics
Ding, Yi-Ming
Liu, Zenan
Tian, Xu
Wang, Zhe
Zhu, Yanzhang
Yan, Zheng
Quantum Physics
Statistical Mechanics
Strongly Correlated Electrons
Computational Physics
Mixed-state phase transitions have recently attracted growing attention as a new frontier in nonequilibrium quantum matter and quantum information. In this work, we introduce the measurement-dressed imaginary-time evolution (MDITE) as a novel framework to explore mixed-state quantum phases and decoherence-driven criticality. In this setup, alternating imaginary-time evolution and projective measurements generate a competition between coherence-restoring dynamics and decoherence-inducing events. While reminiscent of monitored unitary circuits, MDITE fundamentally differs in that the physics is encoded in decoherent mixed states rather than in quantum trajectories. Using numerical simulations of the one-dimensional transverse-field Ising model and the two-dimensional columnar dimerized Heisenberg model, we demonstrate the existence of this kind of mixed-state phase transitions. Notably, these transitions appear to exhibit critical behavior inconsistent with known universality classes. In addition, we provide a diagrammatic representation of the evolving state, which naturally enables efficient studies of MDITE with quantum Monte Carlo and other many-body numerical methods, thereby extending investigations of mixed-state phase transitions to large-scale and higher-dimensional systems. Our results establish MDITE as a versatile platform for investigating mixed-state criticality and uncover new classes of decoherence-driven nonequilibrium phase transitions.
title Mixed-State Measurement-Induced Phase Transitions in Imaginary-Time Dynamics
topic Quantum Physics
Statistical Mechanics
Strongly Correlated Electrons
Computational Physics
url https://arxiv.org/abs/2511.04402