We investigate exotic paired states of spin-imbalanced Fermi gases in anisotropic lattices, tuning the dimension between one and three. We calculate the finite temperature phase diagram of the system using real-space dynamical mean-field theory in combination with the quantum Monte Carlo method. We find that regardless of the intermediate dimensions examined, the Fulde-Ferrell-Larkin-Ovchinnikov (FFLO) state survives to reach about one third of the BCS critical temperature of the spin-density balanced case. We show how the gapless nature of the state found is reflected in the local spectral function. While the FFLO state is found at a wide range of polarizations at low temperatures across the dimensional crossover, with increasing temperatu...
We study a two-species bosonic Hubbard model on a two-dimensional square lattice by means of quantum...
We consider a gas of two species of fermions with population imbalance. Using the renormalization gr...
Ultracold atoms have become an essential tool in studying condensed matter phenomena. The advantage ...
We investigate exotic paired states of spin-imbalanced Fermi gases in anisotropic lattices, tuning t...
We present a full phase diagram for the one-dimensional (1D) to three-dimensional (3D) crossover of ...
We investigate the finite-temperature properties of an ultracold atomic Fermi gas with spin populati...
We study the superfluid weight D s and Berezinskii-Kosterlitz-Thouless (BKT) transition temperatures...
<p><strong>Figure 4.</strong> Zero temperature phase diagram (schematic) as a function of the magnet...
We model the one-dimensional (1D) to three-dimensional (3D) crossover in a cylindrically trapped Fer...
We study the phase diagram of an imbalanced two-component Fermi gas in optical lattices of 1-3 dimen...
We present real-space dynamical mean-field theory calculations for attractively interacting fermions...
\ud We study quantum phases and transitions in ultra-cold quantum gases, beyond the scope of convent...
We study the superfluid properties of two-dimensional spin-population-imbalanced Fermi gases to expl...
We study the phase separated state of an ultracold atomic Fermi gas confined in a three-dimensional ...
Superfluidity with imbalanced populations of harmonically trapped ultracold fermions in a two-dimens...
We study a two-species bosonic Hubbard model on a two-dimensional square lattice by means of quantum...
We consider a gas of two species of fermions with population imbalance. Using the renormalization gr...
Ultracold atoms have become an essential tool in studying condensed matter phenomena. The advantage ...
We investigate exotic paired states of spin-imbalanced Fermi gases in anisotropic lattices, tuning t...
We present a full phase diagram for the one-dimensional (1D) to three-dimensional (3D) crossover of ...
We investigate the finite-temperature properties of an ultracold atomic Fermi gas with spin populati...
We study the superfluid weight D s and Berezinskii-Kosterlitz-Thouless (BKT) transition temperatures...
<p><strong>Figure 4.</strong> Zero temperature phase diagram (schematic) as a function of the magnet...
We model the one-dimensional (1D) to three-dimensional (3D) crossover in a cylindrically trapped Fer...
We study the phase diagram of an imbalanced two-component Fermi gas in optical lattices of 1-3 dimen...
We present real-space dynamical mean-field theory calculations for attractively interacting fermions...
\ud We study quantum phases and transitions in ultra-cold quantum gases, beyond the scope of convent...
We study the superfluid properties of two-dimensional spin-population-imbalanced Fermi gases to expl...
We study the phase separated state of an ultracold atomic Fermi gas confined in a three-dimensional ...
Superfluidity with imbalanced populations of harmonically trapped ultracold fermions in a two-dimens...
We study a two-species bosonic Hubbard model on a two-dimensional square lattice by means of quantum...
We consider a gas of two species of fermions with population imbalance. Using the renormalization gr...
Ultracold atoms have become an essential tool in studying condensed matter phenomena. The advantage ...