In a lattice model subject to a perpendicular magnetic field, when the lattice constant is comparable to the magnetic length, one enters the "Hofstadter regime," where continuum Landau levels become fractal magnetic Bloch bands. Strong mixing between bands alters the nature of the resulting quantum phases compared to the continuum limit; lattice potential, magnetic field, and Coulomb interaction must be treated on equal footing. Using determinant quantum Monte Carlo (DQMC) and density matrix renormalization group (DMRG) techniques, we study this regime numerically in the context of the Hubbard-Hofstadter model on a triangular lattice. In the field-filling phase diagram, we find a broad wedge-shaped region of ferromagnetic ground states for ...
We study the ground-state phase diagram of the strongly interacting Harper-Hofstadter-Mott model at ...
<p><strong>Figure 3.</strong> Non-interacting phase diagram for α = 1/6 and α = 1/10 at half-filling...
<p><strong>Figure 4.</strong> Interacting phase diagram at α = 1/6 as a function of interaction <em>...
In non-interacting systems, bands from non-trivial topology emerge strictly at half-filling and exhi...
Monolayer graphene at charge neutrality in a quantizing magnetic field is a quantum Hall ferromagnet...
Self-similarity and fractals have fascinated researchers across various disciplines. In graphene pla...
Adding a Rashba term to the Hubbard Hamiltonian produces a model which can be used to learn how spin...
The Hofstadter model describes noninteracting fermions on a lattice in the presence of an external m...
The Hofstadter model describes noninteracting fermions on a lattice in the presence of an external m...
The spin-1/2 Heisenberg antiferromagnet on the frustrated diamond-decorated square lattice is known ...
Motivated by the recent progress in engineering artificial non-Abelian gauge fields for ultracold fe...
Motivated by the recent progress in engineering artificial non-Abelian gauge fields for ultracold fe...
In the work, we investigated a generalized model of the fermionic lattice gas in the form of the ext...
We study the ground-state phase diagram of the strongly interacting Harper-Hofstadter-Mott model at ...
We study the ground-state phase diagram of the strongly interacting Harper-Hofstadter-Mott model at ...
We study the ground-state phase diagram of the strongly interacting Harper-Hofstadter-Mott model at ...
<p><strong>Figure 3.</strong> Non-interacting phase diagram for α = 1/6 and α = 1/10 at half-filling...
<p><strong>Figure 4.</strong> Interacting phase diagram at α = 1/6 as a function of interaction <em>...
In non-interacting systems, bands from non-trivial topology emerge strictly at half-filling and exhi...
Monolayer graphene at charge neutrality in a quantizing magnetic field is a quantum Hall ferromagnet...
Self-similarity and fractals have fascinated researchers across various disciplines. In graphene pla...
Adding a Rashba term to the Hubbard Hamiltonian produces a model which can be used to learn how spin...
The Hofstadter model describes noninteracting fermions on a lattice in the presence of an external m...
The Hofstadter model describes noninteracting fermions on a lattice in the presence of an external m...
The spin-1/2 Heisenberg antiferromagnet on the frustrated diamond-decorated square lattice is known ...
Motivated by the recent progress in engineering artificial non-Abelian gauge fields for ultracold fe...
Motivated by the recent progress in engineering artificial non-Abelian gauge fields for ultracold fe...
In the work, we investigated a generalized model of the fermionic lattice gas in the form of the ext...
We study the ground-state phase diagram of the strongly interacting Harper-Hofstadter-Mott model at ...
We study the ground-state phase diagram of the strongly interacting Harper-Hofstadter-Mott model at ...
We study the ground-state phase diagram of the strongly interacting Harper-Hofstadter-Mott model at ...
<p><strong>Figure 3.</strong> Non-interacting phase diagram for α = 1/6 and α = 1/10 at half-filling...
<p><strong>Figure 4.</strong> Interacting phase diagram at α = 1/6 as a function of interaction <em>...