Optical signatures of antiferromagnetic ordering of fermionic atoms in an optical lattice
arXiv:1311.7605 · doi:10.1103/PhysRevX.4.031036
Abstract
We show how off-resonant light scattering can provide quantitative information on antiferromagnetic ordering of a two-species fermionic atomic gas in a tightly-confined two-dimensional optical lattice. We analyze the emerging magnetic ordering of atoms in the mean-field and in random phase approximations and show how the many-body static and dynamic correlations, evaluated in the standard Feynman-Dyson perturbation series, can be detected in the scattered light signal. The staggered magnetization reveals itself in the magnetic Bragg peaks of the individual spin components. These magnetic peaks, however, can be considerably suppressed in the absence of a true long-range antiferromagnetic order. The light scattered outside the diffraction orders can be collected by a lens a with highly improved signal-to-shot-noise ratio when the diffraction maxima are blocked. The collective and single-particle excitations are identified in the spectrum of the scattered light. We find that the spin-conserving and spin-exchanging atomic transitions convey information on density, longitudinal spin, and transverse spin correlations. The different correlations and scattering processes exhibit characteristic angular distribution profiles for the scattered light and, e.g., the diagnostic signal of transverse spin correlations could be separated from the signal by the scattering direction, frequency, or polarization. We also analyze the detection accuracy by estimating the number of required measurements, constrained by the heating rate that is determined by inelastic light scattering events. The imaging technique could be extended to the two-species fermionic states in other regions of the phase diagram where the ground state properties are still not fully understood.
35 pages, 29 figs
References in corpus (24)
- Many-Body Physics with Ultracold Gases
- Single-Atom Resolved Fluorescence Imaging of an Atomic Mott Insulator
- Quantum Simulation of Antiferromagnetic Spin Chains in an Optical Lattice
- Bose-Einstein condensation of atoms in a uniform potential
- Single-Spin Addressing in an Atomic Mott Insulator
- Spatial quantum noise interferometry in expanding ultracold atom clouds
- Short-range quantum magnetism of ultracold fermions in an optical lattice
- Quantum quench in an atomic one-dimensional Ising chain
- Controlling and Detecting Spin Correlations of Ultracold Atoms in Optical lattices
- Nearest-Neighbor Detection of Atoms in a 1D Optical Lattice by Fluorescence Imaging
- Cavity enhanced light scattering in optical lattices to probe atomic quantum statistics
- Quantum Simulation of the Hubbard Model: The Attractive Route
- Antiferromagnetism and single-particle properties in the two-dimensional half-filled Hubbard model: a non-linear sigma model approach
- Coherent light scattering from a two-dimensional Mott insulator
- Light scattering from ultracold atoms in optical lattices as an optical probe of quantum statistics
- Single-site- and single-atom-resolved measurement of correlation functions
- Real-time control of the periodicity of a standing wave: an optical accordion
- Dynamic optical lattices: two-dimensional rotating and accordion lattices for ultracold atoms
- Light scattering for thermometry of fermionic atoms in an optical lattice
- Manipulating atoms in an optical lattice: Fractional fermion number and its optical quantum measurement
- Ultracold atoms in an optical lattice with dynamically variable periodicity
- Antiferromagnetism and single-particle properties in the two-dimensional half-filled Hubbard model: Slater vs Mott-Heisenberg
- Thermal effects in light scattering from ultracold bosons in an optical lattice
- Quantum imaging of spin states in optical lattices
Cited by in corpus (7)
- Multipartite Entangled Spatial Modes of Ultracold Atoms Generated and Controlled by Quantum Measurement
- Engineering Many-Body Dynamics with Quantum Light Potentials and Measurements
- Stochastic electrodynamics simulations for collective atom response in optical cavities
- Probing the dynamic structure factor of a neutral Fermi superfluid along the BCS-BEC crossover using atomic impurity qubits
- Probing and Manipulating Fermionic and Bosonic Quantum Gases with Quantum Light
- Cavity quantum electrodynamics of continuously monitored Bose-condensed atoms
- Raman Characterization of Two-Dimensional Quasiperiodic Antiferromagnets on Various Lattices: Spin-Orbit Mechanism