Science · 2008 · 427 citations · 22 references
Cold Molecular GasesStrong ElasticQuantum DynamicQuantum Lattice SystemEngineeringMany-body Quantum PhysicComputational ChemistryQuantum ComputingMolecular ThermodynamicsUltracold AtomThermodynamicsOptical LatticeQuantum EntanglementMolecular KineticsQuantum MatterThermodynamic EquilibriumAtomic Quantum GasesBiophysicsQuantum SciencePhysicsAtomic PhysicsBose-einstein CondensationNon-equilibrium ProcessNatural SciencesApplied PhysicsCondensed Matter PhysicsEquilibrium ThermodynamicsInduces CorrelationsChemical Kinetics
Atomic quantum gases in the strong-correlation regime offer unique possibilities to explore a variety of many-body quantum phenomena. Reaching this regime has usually required both strong elastic and weak inelastic interactions because the latter produce losses. We show that strong inelastic collisions can actually inhibit particle losses and drive a system into a strongly correlated regime. Studying the dynamics of ultracold molecules in an optical lattice confined to one dimension, we show that the particle loss rate is reduced by a factor of 10. Adding a lattice along the one dimension increases the reduction to a factor of 2000. Our results open the possibility to observe exotic quantum many-body phenomena with systems that suffer from strong inelastic collisions.
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Fault-tolerant quantum computation by anyons
Alexei Kitaev · Annals of Physics · 2003 · 7.1K citations · Full text
Cold Bosonic Atoms in Optical Lattices
Dieter Jaksch, Christoph Bruder, J. I. Cirac et al. · Physical Review Letters · 1998 · 3.6K citations · Full text
The Zeno’s paradox in quantum theory
B. Misra, E. C. G. Sudarshan · Journal of Mathematical Physics · 1977 · 2.2K citations