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April 14, 2026SHILAP Revista de lepidopterología0 citationsOpen Access

Measurement-induced phase transition in interacting bosons from most likely quantum trajectory

ARAnna Delmonte, Zejian Li, Rosario Fazio, Alessandro Romito

Key Points

  • The research aims to develop a method for understanding the dynamics of bosonic many-body systems using quantum trajectory analysis.
  • Proposed a theoretical framework based on the most likely quantum trajectory.
  • Identified trajectories from probability distributions of quantum measurements.
  • Extended the method to the interacting Sine-Gordon model.
  • Confirmed the method's exactness for Gaussian theories.
  • Showed a self-consistent approximation captures dynamics in the interacting framework.
  • Revealed an entanglement phase transition in the steady state from area-law to logarithmic-law scaling.

Abstract

We propose a new theoretical method to describe the monitored dynamics of bosonic many-body systems based on the concept of the most likely trajectory. We show how such trajectory can be identified from the probability distribution of quantum trajectories, i.e. measurement readouts, and how it successfully captures the monitored dynamics beyond the average state. We prove the method to be exact in the case of Gaussian theories and then extend it to the interacting Sine-Gordon model. Although no longer exact in this framework, the method captures the dynamics through a self-consistent time-dependent harmonic approximation and reveals an entanglement phase transition in the steady state from an area-law to a logarithmic-law scaling.

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Cite This Study

Anna Delmonte, Zejian Li, Rosario Fazio, Alessandro Romito (2026) studied this question.

synapsesocial.com/papers/69ddd8eee195c95cdefd6618https://doi.org/10.21468/scipostphys.20.4.109
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