An -condensate of fermionic atom pairs via adiabatic state preparation
arXiv:0911.2005 · doi:10.1103/PhysRevLett.104.240406
Abstract
We discuss how an -condensate, corresponding to an exact excited eigenstate of the Fermi-Hubbard model, can be produced with cold atoms in an optical lattice. Using time-dependent density matrix renormalisation group methods, we analyse a state preparation scheme beginning from a band insulator state in an optical superlattice. This state can act as an important test case, both for adiabatic preparation methods and the implementation of the many-body Hamiltonian, and measurements on the final state can be used to help detect associated errors.
5 pages, 4 figures
References in corpus (14)
- Many-Body Physics with Ultracold Gases
- Ultracold atomic gases in optical lattices: mimicking condensed matter physics and beyond
- Real time evolution using the density matrix renormalization group
- Time-resolved Observation and Control of Superexchange Interactions with Ultracold Atoms in Optical Lattices
- Repulsively bound atom pairs in an optical lattice
- Controlled exchange interaction between pairs of neutral atoms in an optical lattice
- Localization of bosonic atoms by fermionic impurities in a 3d optical lattice
- Observation of Elastic Doublon Decay in the Fermi-Hubbard Model
- Phase diagram for a Bose-Einstein condensate moving in an optical lattice
- Metastable superfluidity of repulsive fermionic atoms in optical lattices
- d-wave resonating valence bond states of fermionic atoms in optical lattices
- Minimum instances of topological matter in an optical plaquette
- Dissipative dynamics of atomic Hubbard models coupled to a phonon bath: Dark state cooling of atoms within a Bloch band of an optical lattice
- Cooling toolbox for atoms in optical lattices
Cited by in corpus (24)
- Quantum trajectories and open many-body quantum systems
- Designing Frustrated Quantum Magnets with Laser-Dressed Rydberg Atoms
- Entanglement of Exact Excited Eigenstates of the Hubbard Model in Arbitrary Dimension
- Effective three-body interactions via photon-assisted tunneling in an optical lattice
- -pairing superfluid in periodically-driven fermionic Hubbard model with strong attraction
- Interaction-induced lattices for bound states: Designing flat bands, quantized pumps and higher-order topological insulators for doublons
- Emergence of long distance pair coherence through incoherent local environmental coupling
- Adiabatic cooling of bosons in lattices to magnetic ordering
- Interaction quantum quenches in the one-dimensional Fermi-Hubbard model with spin imbalance
- Atomic Quantum Technologies for Quantum Matter and Fundamental Physics Applications
- Exact eigenstates of multicomponent Hubbard models: SU() magnetic pairing, weak ergodicity breaking, and partial integrability
- Quantum many-body scars with unconventional superconducting pairing symmetries via multibody interactions
- Lieb's Theorem and Maximum Entropy Condensates
- Controllable Finite-Momenta Dynamical Quasicondensation in the Periodically Driven One-Dimensional Fermi-Hubbard Model
- Observation of slow relaxation due to Hilbert space fragmentation in strongly interacting Bose-Hubbard chains
- Relaxation of Fermionic Excitations in a Strongly Attractive Fermi Gas in an Optical Lattice
- Strongly Interacting Two-component Coupled Bose Gas in Optical Lattices
- Cost of Emulating a Small Quantum Annealing Problem in the Circuit-Model
- Cooling Fermions in an Optical Lattice by Adiabatic Demagnetization
- -pairing states in the Hubbard model with non-uniform Hubbard interaction
- Generating Symmetry-Protected Long-Range Entanglement in Many-Body Systems
- Fermi super-Tonks-Girardeau state for attractive Fermi gases in an optical lattice
- Construction of asymptotic quantum many-body scar states in the SU() Hubbard model
- Strong enhancements to superconducting properties of 1D systems from metallic reservoirs