We develop a description of fermionic superfluids in terms of an effective field theory for the pairing order parameter. Our effective field theory improves on the existing Ginzburg-Landau theory for superfluid Fermi gases in that it is not restricted to temperatures close to the critical temperature. This is achieved by taking into account long-range fluctuations to all orders. The results of the present effective field theory compare well with the results obtained in the framework of the Bogoliubov-de Gennes method. The advantage of an effective field theory over Bogoliubov-de Gennes calculations is that much less computation time is required. In the second part of the ...
Phase diagrams and collective excitations are investigated for a trapped imbalanced Fermi gas in two...
We consider the BCS-BEC (Bose-Einstein-condensate) crossover for a system of trapped Fermi atoms at...
Vortex arrays in type-II superconductors reflect the translational symmetry of an infinite system. T...
We develop a description of fermionic superfluids in terms of an effective field theory for the pair...
Fermionic superfluidity in atomic Fermi gases across a Feshbach resonance is normally described by t...
We study the superfluid critical temperature in a two-band attractive Fermi system with strong pairi...
In two-dimensional systems with a continuous symmetry, the Mermin-Wagner-Hohenberg theorem precludes...
In this chapter, we present the details of the derivation of an effective field theory (EFT) for a F...
This dissertation presents the theoretical study of two-component fermionic gases. It firstly studie...
We derive a mean-field description for two-dimensional (2D) interacting Bose gases at arbitrary temp...
The role of fluctuations is enhanced in lower dimensionality systems: in a two dimensions off-diagon...
We present fundamental constraints required for a consistent linear response theory of fermionic sup...
We present a theory for a superfluid Fermi gas near the BCS-BEC crossover, including pairing fluctua...
Phase diagrams and collective excitations are investigated for a trapped imbalanced Fermi gas in two...
We consider the BCS-BEC (Bose-Einstein-condensate) crossover for a system of trapped Fermi atoms at...
Vortex arrays in type-II superconductors reflect the translational symmetry of an infinite system. T...
We develop a description of fermionic superfluids in terms of an effective field theory for the pair...
Fermionic superfluidity in atomic Fermi gases across a Feshbach resonance is normally described by t...
We study the superfluid critical temperature in a two-band attractive Fermi system with strong pairi...
In two-dimensional systems with a continuous symmetry, the Mermin-Wagner-Hohenberg theorem precludes...
In this chapter, we present the details of the derivation of an effective field theory (EFT) for a F...
This dissertation presents the theoretical study of two-component fermionic gases. It firstly studie...
We derive a mean-field description for two-dimensional (2D) interacting Bose gases at arbitrary temp...
The role of fluctuations is enhanced in lower dimensionality systems: in a two dimensions off-diagon...
We present fundamental constraints required for a consistent linear response theory of fermionic sup...
We present a theory for a superfluid Fermi gas near the BCS-BEC crossover, including pairing fluctua...
Phase diagrams and collective excitations are investigated for a trapped imbalanced Fermi gas in two...
We consider the BCS-BEC (Bose-Einstein-condensate) crossover for a system of trapped Fermi atoms at...
Vortex arrays in type-II superconductors reflect the translational symmetry of an infinite system. T...