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    Postselected Criticality in Measurement-Induced Phase Transitions

    Dolly Nambi1,*, Kabir Khanna2,3,4,*, Andrew Allocca5,1, Thomas Iadecola6,7,8,9, Ciarán Hickey10,11, Romain Vasseur2,4, and Justin H. Wilson1,12,†

    • *These authors contributed equally to this work.
    • †Contact author: jhwilson@lsu.edu

    Phys. Rev. Lett. 137, 130403 – Published 25 September, 2026

    DOI: https://doi.org/10.1103/gx2q-9xz1

    Abstract

    Information-theoretic phase transitions, such as the measurement-induced phase transition (MIPT), characterize the robustness of quantum dynamics to local monitoring and are naturally formulated in terms of trajectories conditioned on typical measurement outcomes, which are naively accessible only through postselection. Here, we implement forced measurements to investigate how explicit postselection alters the nature of the transition. We find that postselection fundamentally alters the universality class by reweighting trajectories that are otherwise rare. In particular, we obtain a correlation-length exponent ν≈2.1 larger than that of the standard MIPT and a negative effective central charge ceff≈−0.35. We also compare the postselected MIPT to the entanglement transition of random tensor networks, and demonstrate that their universality class is the same. This setup further allows time-periodic, translationally invariant circuits with postselected weak measurements. In both models, we find that an on-site dimension of at least 3 (qutrits but not qubits) is necessary to induce a transition.

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