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Gauge-Theoretic Origin of Rydberg Quantum Spin Liquids

Poetri Sonya Tarabunga, Federica Maria Surace, Riccardo Andreoni, Adriano Angelone, Marcello Dalmonte

2022Physical Review Letters28 citationsDOIOpen Access PDF

Abstract

Recent atomic physics experiments and numerical works have reported complementary signatures of the emergence of a topological quantum spin liquid in models with blockade interactions. However, the specific mechanism stabilizing such a phase remains unclear. Here, we introduce an exact relation between an Ising-Higgs lattice gauge theory on the kagome lattice and blockaded models on Ruby lattices. This relation elucidates the origin of previously observed topological spin liquids by directly linking the latter to a deconfined phase of a solvable gauge theory. By means of exact diagonalization and unbiased quantum Monte Carlo simulations, we show that the deconfined phases extend in a broad region of the parameter space; these states are characterized by a large ground state overlap with resonating valence bond wave functions. These blockaded models include both creation or annihilation and hopping dynamics, and can be experimentally realized with Rydberg-dressed atoms, offering novel and controllable platforms for the engineering and characterization of spin liquid states.

Topics & Concepts

PhysicsRydberg formulaQuantum Monte CarloQuantum mechanicsGauge theoryLattice gauge theoryRydberg atomQuantum spin liquidValence bond theoryLattice (music)QuantumDyonParameter spaceTheoretical physicsMonte Carlo methodMagnetic monopoleAtomic orbitalElectronIonizationAcousticsSpin polarizationMathematicsStatisticsIonAdvanced Condensed Matter PhysicsQuantum many-body systemsCold Atom Physics and Bose-Einstein Condensates
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