From Rotating Atomic Rings to Quantum Hall States
arXiv:1101.5593 · doi:10.1038/srep00043
Abstract
Considerable efforts are currently devoted to the preparation of ultracold neutral atoms in the emblematic strongly correlated quantum Hall regime. The routes followed so far essentially rely on thermodynamics, i.e. imposing the proper Hamiltonian and cooling the system towards its ground state. In rapidly rotating 2D harmonic traps the role of the transverse magnetic field is played by the angular velocity. For particle numbers significantly larger than unity, the required angular momentum is very large and it can be obtained only for spinning frequencies extremely near to the deconfinement limit; consequently, the required control on experimental parameters turns out to be far too stringent. Here we propose to follow instead a dynamic path starting from the gas confined in a rotating ring. The large moment of inertia of the fluid facilitates the access to states with a large angular momentum, corresponding to a giant vortex. The initial ring-shaped trapping potential is then adiabatically transformed into a harmonic confinement, which brings the interacting atomic gas in the desired quantum Hall regime. We provide clear numerical evidence that for a relatively broad range of initial angular frequencies, the giant vortex state is adiabatically connected to the bosonic Laughlin state, and we discuss the scaling to many particles.
9 pages, 5 figures
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Cited by in corpus (50)
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- Hypersonic Bose-Einstein Condensates in Accelerator Rings
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- Emergence of fractional statistics for tracer particles in a Laughlin liquid
- Quantum Hall States in Rapidly Rotating Two-Component Bose Gases
- Edge Mode Combinations in the Entanglement Spectra of Non-Abelian Fractional Quantum Hall States on the Torus
- Holographic Fluids with Vorticity and Analogue Gravity
- Splitting of singly and doubly quantized composite vortices in two-component Bose-Einstein condensates
- Quantum Hall phases and plasma analogy in rotating trapped Bose gases
- Ground-state multiquantum vortices in rotating two-species superfluids
- Fractional quantum Hall states of few bosonic atoms in geometric gauge fields
- Strongly correlated states of a small cold atomic cloud from geometric gauge fields
- Quantum Hall states of bosons in rotating anharmonic traps
- Many-anyon trial states
- Exclusion bounds for extended anyons
- Topological and noninertial effects in an Aharonov-Bohm ring
- Three-dimensional splitting dynamics of giant vortices in Bose-Einstein condensates
- Coherent generation of photonic fractional quantum Hall states in a cavity and the search for anyonic quasiparticles
- Enhanced many-body effects in the excitation spectrum of a weakly-interacting rotating Bose-Einstein condensate
- Novel techniques to cool and rotate Bose-Einstein condensates in time-averaged adiabatic potentials
- Controllable Asymmetric Matter-wave Beam Splitter and Ring Potential on an Atom Chip
- Preparation of the 1/2-Laughlin state with atoms in a rotating trap
- Skyrmion Ground States of Rapidly Rotating Few-Fermion Systems
- Bandwidth-resonant Floquet states in honeycomb optical lattices
- Linear and nonlinear edge dynamics of trapped fractional quantum Hall droplets
- Incompressibility Estimates for the Laughlin Phase
- Theory of fractional quantum Hall liquids coupled to quantum light and emergent graviton-polaritons
- Hall response of interacting bosonic atoms in strong gauge fields: from condensed to FQH states
- Induced supersolidity and hypersonic flow of a dipolar Bose-Einstein Condensate in a rotating bubble trap
- Observable signatures of Hall viscosity in lowest Landau level superfluids
- Reaching the quantum Hall regime with rotating Rydberg-dressed atoms
- Strongdeco: Expansion of analytical, strongly correlated quantum states into a many-body basis
- Exact closed-form analytic wave functions in two dimensions: Contact-interacting fermionic spinful ultracold atoms in a rapidly rotating trap
- Rotational properties of two-component Bose gases in the lowest Landau level
- Fractional Excitations in Cold Atomic Gases
- Rotating a Bose-Einstein condensate by shaking an anharmonic axisymmetric magnetic potential
- Fragility of the Laughlin state in an anharmonically-trapped Bose-Einstein condensate
- Controllable splitting dynamics of a doubly quantized vortex in a rotating ring-shaped condensate
- Effect of non-local interactions on the vortex solution in Bose-Einstein Condensates
- Creating fractional quantum Hall states with atomic clusters using light-assisted insertion of angular momentum
- Strongly correlated states of trapped ultracold fermions in deformed Landau levels
- Topological Quantum Phase Transition from Fermionic Integer Quantum Hall Phase to Bosonic Fractional Quantum Hall Phase through P-Wave Feshbach Resonance
- Expansion of a quantum gas in a shell trap
- Linear dependencies between Composite Fermion states
- Composite fermion basis for two-component Bose gases
- Many-body effects in the excitations and dynamics of trapped Bose-Einstein condensates
- Transition from the mean-field to the bosonic Laughlin state in a rotating Bose-Einstein condensate
- Hyperspherical Slater determinant approach to few-body fractional quantum Hall states
- A versatile ring trap for quantum gases