Publication | Open Access
Landau-Forbidden Quantum Criticality in Rydberg Quantum Simulators
26
Citations
56
References
2023
Year
Quantum DynamicQuantum ScienceEngineeringQuantum ComputingPhysicsMany-body Quantum PhysicNatural SciencesRydberg AtomsApplied PhysicsQuantum Mechanical PropertyDisordered Quantum SystemAtomic PhysicsUltracold AtomQuantum TheoryRydberg Quantum SimulatorsQuantum EntanglementDistinct SymmetriesQuantum Criticality
The Landau-Ginzburg-Wilson theory of phase transitions precludes a continuous transition between two phases that spontaneously break distinct symmetries. However, quantum mechanical effects can intertwine the symmetries, giving rise to an exotic phenomenon called deconfined quantum criticality (DQC). In this Letter, we study the ground state phase diagram of a one-dimensional array of individually trapped neutral atoms interacting strongly via Rydberg states, and demonstrate through extensive numerical simulations that it hosts a variety of symmetry-breaking phases and their transitions including DQC. We show how an enlarged, emergent continuous symmetry arises at the DQCs, which can be experimentally observed in the joint distribution of two distinct order parameters, obtained within measurement snapshots in the standard computational basis. Our findings highlight quantum simulators of Rydberg atoms not only as promising platforms to experimentally realize such exotic phenomena, but also as unique ones allowing access to physical properties not obtainable in traditional experiments.
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