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Universal crossovers in weakly-monitored quantum critical states

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arxiv 2608.02716 v1 pith:2WERLQVF submitted 2026-08-03 cond-mat.stat-mech

classification cond-mat.stat-mech
keywords criticalisingstatesentanglementfindfixedgrounduniversal
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We study post-measurement ensembles of ground states of tricritical and critical 1D quantum Ising Hamiltonians subjected, respectively, to weak energy and spin measurements without post-selection. These measurements act as relevant perturbations about the unmeasured critical ground states. Using finite-size renormalization group (RG) crossover analyses, we characterize their universal properties through the entanglement effective central charge, effective Affleck-Ludwig boundary entropy, and signatures of multifractality from moments of measurement-averaged correlation functions. In both cases, we find evidence for "measurement-dominated" or "measurement-altered" fixed points governed by the underlying Born-rule randomness. For critical Ising, we find a direct RG flow to a projective-measurement fixed point with area-law entanglement, whereas for the tricritical Ising model, we find evidence for a weak-measurement fixed point with logarithmic entanglement. These results clarify the RG-flow structure of weakly measured multicritical Ising ground states and show how intrinsic measurement-induced randomness can generate complex and rich universal long-distance scaling behavior in the post-measurement ensembles, accessible to controlled analytical RG and numerical finite-size RG crossover analyses.

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  1. Theory of Measurement-Altered Criticality

    cond-mat.stat-mech 2026-08 conditional novelty 8.0 of 10

    For weakly measured Tomonaga-Luttinger liquids, averaged density and phase correlators decay with a universal multifractal spectrum and a square-root-of-logarithm correction, differing sharply from both clean and post...

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