By using unbiased continuous-space quantum Monte Carlo simulations, we investigate the ground-state properties of a one-dimensional repulsive Fermi gas subjected to a commensurate periodic optical lattice (OL) of arbitrary intensity. The equation of state and the magnetic structure factor are determined as a function of the interaction strength and of the OL intensity. In the weak OL limit, Yang's theory for the energy of a homogeneous Fermi gas [C.-N. Yang, Phys. Rev. Lett. 19, 1312 (1967)PRLTAO0031-900710.1103/PhysRevLett.19.1312] is recovered. In the opposite limit (deep OL), we analyze the convergence to the Lieb-Wu theory for the Hubbard model [E. H. Lieb and F. Y. Wu, Phys. Rev. Lett. 20, 1445 (1968)PRLTAO0031-900710.1103/PhysRevLett....
We investigate the zero-temperature metal-insulator transition in a one-dimensional two-component Fe...
A one-dimensional world is very unusual as there is an interplay between quantum statistics and geom...
We theoretically investigate the behavior of a system of fermionic atoms loaded in a bipartite one-d...
By using unbiased continuous-space quantum Monte Carlo simulations, we investigate the ground-state ...
Using continuous-space quantum Monte Carlo methods, we investigate the zero-temperature ferroma...
Interacting two-component Fermi gases loaded in a one-dimensional (1D) lattice and subjected to a ha...
We benchmark the ground state energies and the density profiles of atomic repulsive Fermi gases in o...
The dynamics of a one-dimensional two-component Fermi gas in the presence of a quasiperiodic optical...
"We present a numerical study on ground state properties of a one-dimensional (1D) general Hubbard m...
The Hubbard model contains only the essential ingredients to describe the behavior of strongly inter...
Interacting two-component Fermi gases loaded in a one-dimensional (1D) lattice and subjected to a ha...
We investigate a system of fermions on a two-dimensional optical square lattice in the strongly repu...
We present new results for interacting quantum Fermi gases, confined in an optical lattice. Finite t...
We investigate the zero-temperature ferromagnetic behavior of a two-component repulsive Fermi gas in...
We investigate the zero-temperature metal-insulator transition in a one-dimensional two-component Fe...
A one-dimensional world is very unusual as there is an interplay between quantum statistics and geom...
We theoretically investigate the behavior of a system of fermionic atoms loaded in a bipartite one-d...
By using unbiased continuous-space quantum Monte Carlo simulations, we investigate the ground-state ...
Using continuous-space quantum Monte Carlo methods, we investigate the zero-temperature ferroma...
Interacting two-component Fermi gases loaded in a one-dimensional (1D) lattice and subjected to a ha...
We benchmark the ground state energies and the density profiles of atomic repulsive Fermi gases in o...
The dynamics of a one-dimensional two-component Fermi gas in the presence of a quasiperiodic optical...
"We present a numerical study on ground state properties of a one-dimensional (1D) general Hubbard m...
The Hubbard model contains only the essential ingredients to describe the behavior of strongly inter...
Interacting two-component Fermi gases loaded in a one-dimensional (1D) lattice and subjected to a ha...
We investigate a system of fermions on a two-dimensional optical square lattice in the strongly repu...
We present new results for interacting quantum Fermi gases, confined in an optical lattice. Finite t...
We investigate the zero-temperature ferromagnetic behavior of a two-component repulsive Fermi gas in...
We investigate the zero-temperature metal-insulator transition in a one-dimensional two-component Fe...
A one-dimensional world is very unusual as there is an interplay between quantum statistics and geom...
We theoretically investigate the behavior of a system of fermionic atoms loaded in a bipartite one-d...