We present a functional renormalization group investigation of an Euclidean three-dimensional matrix Yukawa model with U(N) symmetry, which describes N=2 Weyl fermions that effectively interact via a short-range repulsive interaction. This system relates to an effective low-energy theory of spinless electrons on the honeycomb lattice and can be seen as a simple model for suspended graphene. We find a continuous phase transition characterized by large anomalous dimensions for the fermions and composite degrees of freedom. The critical exponents define a new universality class distinct from Gross-Neveu type models, typically considered in this context
Spinless fermions on a honeycomb lattice provide a minimal realization of lattice Dirac fermions. Re...
We analyze by exact Renormalization Group (RG) methods the infrared properties of an effective model...
We consider the two-dimensional (2D) Hubbard model on the honeycomb lattice, as a model for a single...
We present a functional renormalization group investigation of an Euclidean three-dimensional matrix...
Graphene, a monolayer of graphite, opened a new frontier in physics with reduced dimen- sionality. D...
In this thesis, we study the electron-electron interaction on the graphene honeycomb lattice theoret...
The effects of gauge interactions in graphene have been analyzed up until now in terms of effective ...
We present the first results of numerical simulations of a 2+1 dimensional fermion field theory base...
We establish a scenario where fluctuations of new degrees of freedom at a quantum phase transition c...
Abstract. Spinless fermions on a honeycomb lattice provide a minimal realization of lattice Dirac fe...
This dissertation focuses on the application of fermionic functional Renormalization Group (fRG) tec...
In this Ph.D. thesis a model for graphene in presence of quantized electromagnetic interactions is i...
We study a number of quantum phase transitions, which are exotic in their nature and separates non-t...
We study the quantum many-body ground states of electrons on the half-filled honeycomb lattice with ...
We consider the two-dimensional (2D) Hubbard model on the honeycomb lattice, as a model for a single...
Spinless fermions on a honeycomb lattice provide a minimal realization of lattice Dirac fermions. Re...
We analyze by exact Renormalization Group (RG) methods the infrared properties of an effective model...
We consider the two-dimensional (2D) Hubbard model on the honeycomb lattice, as a model for a single...
We present a functional renormalization group investigation of an Euclidean three-dimensional matrix...
Graphene, a monolayer of graphite, opened a new frontier in physics with reduced dimen- sionality. D...
In this thesis, we study the electron-electron interaction on the graphene honeycomb lattice theoret...
The effects of gauge interactions in graphene have been analyzed up until now in terms of effective ...
We present the first results of numerical simulations of a 2+1 dimensional fermion field theory base...
We establish a scenario where fluctuations of new degrees of freedom at a quantum phase transition c...
Abstract. Spinless fermions on a honeycomb lattice provide a minimal realization of lattice Dirac fe...
This dissertation focuses on the application of fermionic functional Renormalization Group (fRG) tec...
In this Ph.D. thesis a model for graphene in presence of quantized electromagnetic interactions is i...
We study a number of quantum phase transitions, which are exotic in their nature and separates non-t...
We study the quantum many-body ground states of electrons on the half-filled honeycomb lattice with ...
We consider the two-dimensional (2D) Hubbard model on the honeycomb lattice, as a model for a single...
Spinless fermions on a honeycomb lattice provide a minimal realization of lattice Dirac fermions. Re...
We analyze by exact Renormalization Group (RG) methods the infrared properties of an effective model...
We consider the two-dimensional (2D) Hubbard model on the honeycomb lattice, as a model for a single...