Scalable spin squeezing on random graphs requires spectral dimension control or sub-criticality, emerging from xy-ferromagnetic and percolation universality interplay.
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In a monitored dissipative spin model realizable on Rydberg simulators, free-energy functionals applied to trajectory ensembles identify dynamical features akin to hydrophobic effects in classical phase transitions.
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Robust spin-squeezing with random interaction graphs: the lesson from universality
Scalable spin squeezing on random graphs requires spectral dimension control or sub-criticality, emerging from xy-ferromagnetic and percolation universality interplay.
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Revealing emergent many-body phenomena by analyzing large-scale space-time records of monitored quantum systems
In a monitored dissipative spin model realizable on Rydberg simulators, free-energy functionals applied to trajectory ensembles identify dynamical features akin to hydrophobic effects in classical phase transitions.