Thermometry Precision in Strongly Correlated Ultracold Lattice Gases
arXiv:1501.03095 · doi:10.1088/1367-2630/17/5/055020
Abstract
The precise knowledge of the temperature of an ultracold lattice gas simulating a strongly correlated system is a question of both, fundamental and technological importance. Here, we address such question by combining tools from quantum metrology together with the study of the quantum correlations embedded in the system at finite temperatures. Within this frame we examine the spin- XY chain, first estimating, by means of the quantum Fisher information, the lowest attainable bound on the temperature precision. We then address the estimation of the temperature of the sample from the analysis of correlations using a quantum non demolishing Faraday spectroscopy method. Finally, we demonstrate that for sufficiently low temperatures the proposed measurements are optimal to estimate accurately the temperature of the sample.
16 pages, 5 figures
References in corpus (16)
- Many-Body Physics with Ultracold Gases
- Quantum phase transition from a superfluid to a Mott insulator in a gas of ultracold atoms
- Single-Atom Resolved Fluorescence Imaging of an Atomic Mott Insulator
- Quantum Simulation of Antiferromagnetic Spin Chains in an Optical Lattice
- Spatial quantum noise interferometry in expanding ultracold atom clouds
- Quantum criticality as a resource for quantum estimation
- Quantum Non-Demolition Detection of Strongly Correlated Systems
- Theory of ground state factorization in quantum cooperative systems
- Multimode entanglement of light and atomic ensembles via off-resonant coherent forward scattering
- Quantum Metrology: Extended Convexity of Quantum Fisher Information
- A single quantum dot as an optical thermometer for mK temperatures
- Quantum polarization spectroscopy of ultracold spinor gases
- Quantum control of spin-correlations in ultracold lattice gases
- Characterization of Bose-Hubbard Models with Quantum Non-demolition Measurements
- Probing magnetic order in ultracold lattice gases
- Hidden XY structure of the bond-charge Hubbard model
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