Publication | Open Access
Engineering the dynamics of effective spin-chain models for strongly interacting atomic gases
96
Citations
39
References
2015
Year
Quantum DynamicEngineeringMany-body Quantum PhysicCold AtomsSpin DynamicSpin PhenomenonQuantum ComputingQuantum Mechanical PropertyUltracold AtomSpin DynamicsQuantum EntanglementQuantum SciencePhysicsAtomic PhysicsQuantum ChemistrySpintronicsEffective Spin-chain ModelsEffective Spin-chain HamiltonianNatural SciencesApplied PhysicsAtomic GasesQuantum SystemSpin HamiltonianMany-body Problem
We consider a one-dimensional gas of cold atoms with strong contact interactions and construct an effective spin-chain Hamiltonian for a two-component system. The resulting Heisenberg spin model can be engineered by manipulating the shape of the external confining potential of the atomic gas. We find that bosonic atoms offer more flexibility for independently tuning the parameters of the spin Hamiltonian through interatomic (intraspecies) interaction, which is absent for fermions due to the Pauli exclusion principle. Our formalism can have important implications for control and manipulation of the dynamics of few- and many-body quantum systems; as an illustrative example relevant to quantum computation and communication, we consider state transfer in the simplest nontrivial system of four particles representing exchange-coupled qubits.
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