Quantum polarization spectroscopy of ultracold spinor gases
arXiv:cond-mat/0608306 · doi:10.1103/PhysRevLett.98.100404
Abstract
We propose a method for the detection of ground state quantum phases of spinor gases through a series of two quantum nondemolition measurements performed by sending off-resonant, polarized light pulses through the gas. Signatures of various mean-field as well as strongly-correlated phases of F=1 and F=2 spinor gases obtained by detecting quantum fluctuations and mean values of polarization of transmitted light are identified.
5 pages, 1 figure; v2: minor changes
References in corpus (4)
Cited by in corpus (14)
- Quantum Non-Demolition Detection of Strongly Correlated Systems
- Metastable states of a gas of dipolar bosons in a 2D optical lattice
- Dirac Equation For Cold Atoms In Artificial Curved Spacetimes
- REVIEW. Quantum optics with ultracold quantum gases: towards the full quantum regime of the light-matter interaction
- Probing spatial spin correlations of ultracold gases by quantum noise spectroscopy
- Quantum control of spin-correlations in ultracold lattice gases
- Inferring Nonlinear Many-Body Bell Inequalities From Average Two-Body Correlations: Systematic Approach for Arbitrary Spin-j Ensembles
- Ultracold atomic Bose and Fermi spinor gases in optical lattices
- Characterization of Bose-Hubbard Models with Quantum Non-demolition Measurements
- Quantum imaging of spin states in optical lattices
- Fermion- and Spin-Counting in Strongly Correlated Systems
- Cavity-aided quantum parameter estimation in a bosonic double-well Josephson junction
- Cavity-enhanced detection of magnetic orders in lattice spin models
- Theory of spin nematic to spin-Peierls quantum phase transition in ultracold spin-1 atoms in optical lattices