Spin noise spectroscopy to probe quantum states of ultracold fermionic atomic gases
arXiv:cond-mat/0601011 · doi:10.1103/PhysRevA.74.063608
Abstract
Ultracold alkali atoms provide experimentally accessible model systems for probing quantum states that manifest themselves at the macroscopic scale. Recent experimental realizations of superfluidity in dilute gases of ultracold fermionic (half-integer spin) atoms offer exciting opportunities to directly test theoretical models of related many-body fermion systems that are inaccessible to experimental manipulation, such as neutron stars and quark-gluon plasmas. However, the microscopic interactions between fermions are potentially quite complex, and experiments in ultracold gases to date cannot clearly distinguish between the qualitatively different microscopic models that have been proposed. Here, we theoretically demonstrate that optical measurements of electron spin noise -- the intrinsic, random fluctuations of spin -- can probe the entangled quantum states of ultracold fermionic atomic gases and unambiguously reveal the detailed nature of the interatomic interactions. We show that different models predict different sets of resonances in the noise spectrum, and once the correct effective interatomic interaction model is identified, the line-shapes of the spin noise can be used to constrain this model. Further, experimental measurements of spin noise in classical (Boltzmann) alkali vapors are used to estimate the expected signal magnitudes for spin noise measurements in ultracold atom systems and to show that these measurements are feasible.
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Cited by in corpus (8)
- The Theory of Spin Noise Spectroscopy: A Review
- "Listening" to the spin noise of conduction electrons in bulk n:GaAs
- Spin-noise-based magnetometry of an -doped GaAs microcavity in the field of elliptically polarized light
- Probing spatial spin correlations of ultracold gases by quantum noise spectroscopy
- Nonequilibrium spin noise spectroscopy
- Higher Order Spin Noise Statistics
- Even-Odd Correlation Functions on an Optical Lattice
- Acoustic attenuation rate in the Fermi-Bose model with a finite-range fermion-fermion interaction