Functional Integral for Ultracold Fermionic Atoms
arXiv:cond-mat/0510407 · doi:10.1016/j.nuclphysb.2007.02.026
Abstract
We develop a functional integral formalism for ultracold gases of fermionic atoms. It describes the BEC - BCS crossover and involves both atom and molecule fields. Beyond mean field theory we include the fluctuations of the molecule field by the solution of gap equations. In the BEC limit, we find that the low temperature behavior is described by a Bogoliubov theory for bosons. For a narrow Feshbach resonance these bosons can be associated with microscopic molecules. In contrast, for a broad resonance the interaction between the atoms is approximately pointlike and microscopic molecules are irrelevant. The bosons represent now correlated atom pairs or composite ``dressed molecules''. The low temperature results agree with quantum Monte Carlo simulations. Our formalism can treat with general inhomogeneous situations in a trap. For not too strong inhomogeneities the detailed properties of the trap are not needed for the computation of the fluctuation effects - they enter only in the solutions of the field equations.
39 pages, 11 figures
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Cited by in corpus (32)
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- Particle-hole fluctuations in the BCS-BEC Crossover
- Ultracold atoms and the Functional Renormalization Group
- Algorithmic derivation of functional renormalization group equations and Dyson-Schwinger equations
- Pseudogaps in strongly interacting Fermi gases
- Functional renormalization group approach to the BCS-BEC crossover
- Functional renormalization for quantum phase transitions with non-relativistic bosons
- Phase structure of mass- and spin-imbalanced unitary Fermi gases
- Renormalisation Flow and Universality for Ultracold Fermionic Atoms
- Efimov effect from functional renormalization
- Three-body scattering from nonperturbative flow equations
- Phase structure of spin-imbalanced unitary Fermi gases
- Modified Fermi-sphere, pairing gap and critical temperature for the BCS-BEC crossover
- Renormalization of the BCS-BEC crossover by order parameter fluctuations
- Critical temperature and superfluid gap of the Unitary Fermi Gas from Functional Renormalization
- Quantum Field Theory for the Three-Body Constrained Lattice Bose Gas -- Part I: Formal Developments
- Renormalization group study of Bose polarons
- Mobile impurity in a Fermi sea from the functional renormalization group analytically continued to real time
- Narrow resonances and short-range interactions
- Tan contact and universal high momentum behavior of the fermion propagator in the BCS-BEC crossover
- Functional renormalization group in the broken symmetry phase: momentum dependence and two-parameter scaling of the self-energy
- Sarma phase in relativistic and non-relativistic systems
- Effective theory for the Goldstone field in the BCS-BEC crossover at T=0
- Finite-size and Particle-number Effects in an Ultracold Fermi Gas at Unitarity
- Efimov physics from the functional renormalization group
- Error estimates and specification parameters for functional renormalization
- Finite temperature vortices in a rotating Fermi gas
- Diversified vortex phase diagram for a rotating trapped two-band Fermi gas in the BCS-BEC crossover
- Dimensional crossover in ultracold Fermi gases from Functional Renormalisation
- Functional renormalisation group approach to the finite-temperature Bose polaron
- Functional renormalization for the BCS-BEC crossover
- Occupation numbers from functional integral