Spectroscopy for cold atom gases in periodically phase-modulated optical lattices
arXiv:1101.2469 · doi:10.1103/PhysRevLett.106.205301
Abstract
The response of cold atom gases to small periodic phase modulation of an optical lattice is discussed. For bosonic gases, the energy absorption rate is given, within linear response theory, by imaginary part of the current correlation function. For fermionic gases in a strong lattice potential, the same correlation function can be probed via the production rate double occupancy. The phase modulation gives thus direct access to the conductivity of the system, as function of the modulation frequency. We give an example of application in the case of one dimensional bosons at zero temperature and discuss the link between the phase- and amplitude-modulation.
4 pages, 2 figures, final version
References in corpus (11)
- Many-Body Physics with Ultracold Gases
- Dynamical control of matter-wave tunneling in periodic potentials
- Using photoemission spectroscopy to probe a strongly interacting Fermi gas
- Fermi-Hubbard physics with atoms in an optical lattice
- Spatial quantum noise interferometry in expanding ultracold atom clouds
- Molecules of Fermionic Atoms in an Optical Lattice
- Spectroscopy of ultracold atoms by periodic lattice modulations
- AC-induced superfluidity
- Bragg spectroscopy of trapped one dimensional strongly interacting bosons in optical lattices: Probing the cake-structure
- Probing quasi-particle states in strongly interacting atomic gases by momentum-resolved Raman photoemission spectroscopy
- Driven optical lattices as strong-field simulators
Cited by in corpus (38)
- Visibility of the Amplitude (Higgs) Mode in Condensed Matter
- Schrieffer-Wolff Transformation for Periodically Driven Systems: Strongly Correlated Systems with Artificial Gauge Fields
- Probing real-space and time resolved correlation functions with many-body Ramsey interferometry
- Lattice generalization of the Dirac equation to general spin and the role of the flat band
- Universal Conductivity in a Two-Dimensional Superfluid-to-Insulator Quantum Critical System
- Non-Hermitian Topological Phases: Principles and Prospects
- Effective three-body interactions via photon-assisted tunneling in an optical lattice
- Conductivity spectrum of ultracold atoms in an optical lattice
- Characterization of Mott-insulating and superfluid phases in the one-dimensional Bose--Hubbard model
- Dynamics and Conductivity Near Quantum Criticality
- Slow quench dynamics of periodically driven quantum gases
- Kilohertz-driven Bose-Einstein condensates in optical lattices
- Heating dynamics of bosonic atoms in a noisy optical lattice
- Identifying a bath-induced Bose liquid in interacting spin-boson models
- Dynamical theory of superfluidity in one dimension
- Observation of coherent quench dynamics in a metallic many-body state of fermionic atoms
- Regimes of heating and dynamical response in driven many-body localized systems
- Critical capacitance and charge-vortex duality near the superfluid to insulator transition
- Dynamical response near quantum critical points
- Quantum Criticality and Population Trapping of Fermions by Non-Equilibrium Lattice Modulations
- Quantum critical response: from conformal perturbation theory to holography
- Controlled wave-packet manipulation with driven optical lattices
- Probing the optical conductivity of trapped charge-neutral quantum gases
- Conductivity of strongly correlated bosons in optical lattices in an Abelian synthetic magnetic field
- Lattice modulation spectroscopy of one-dimensional quantum gases:Universal scaling of the absorbed energy
- Superexchange Liquefaction of Strongly Correlated Lattice Dipolar Bosons
- Lieb's Theorem and Maximum Entropy Condensates
- Energy absorption spectroscopy of unitary Fermi gases in a uniform potential
- Dynamical correlation functions for the one-dimensional Bose-Hubbard insulator
- Spin conductivity spectrum and spin superfluidity in a binary Bose mixture
- Dynamics of harmonically confined systems: some rigorous results
- Nonequilibrium properties of an atomic quantum dot coupled to a Bose-Einstein condensate
- Driven dipole oscillations and the lowest energy excitations of strongly interacting lattice bosons in a harmonic trap
- Dynamical conductivity of disordered quantum chains
- Finite temperature dynamical properties of SU() fermionic Hubbard models in the spin-incoherent regime
- Time dependent local potential in a Tomonaga-Luttinger liquid
- Cold Atoms in Driven Optical Lattices
- Collective modes for helical edge state interacting with quantum light