Publication | Open Access
Atomic Quantum Simulation of Dynamical Gauge Fields Coupled to Fermionic Matter: From String Breaking to Evolution after a Quench
350
Citations
35
References
2012
Year
Quantum Lattice SystemEngineeringMany-body Quantum PhysicAtomic Quantum SimulationString TheoryQuantum ComputingQuantum SimulationQuantum TheoryQuantum EntanglementQuantum MatterGauge TheoryQuantum ScienceFermionic MatterPhysicsQuantum Field TheoryAtomic PhysicsQuantum SimulatorFermi-bose MixtureDynamical Gauge FieldsCondensed Matter TheoryNatural SciencesParticle PhysicsApplied PhysicsGauge Field Theory
Using a Fermi-Bose mixture of ultracold atoms in an optical lattice, we construct a quantum simulator for a U(1) gauge theory coupled to fermionic matter. The construction is based on quantum links which realize continuous gauge symmetry with discrete quantum variables. At low energies, quantum link models with staggered fermions emerge from a Hubbard-type model which can be quantum simulated. This allows us to investigate string breaking as well as the real-time evolution after a quench in gauge theories, which are inaccessible to classical simulation methods.
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