In this work, we elaborate on two recently discovered invariance principles, according to which transport coefficients are, to a large extent, independent of the microscopic definition of the densities and currents of the conserved quantities being transported (energy, momentum, mass, charge). The first such principle, gauge invariance, allows one to define a quantum adiabatic energy current from density-functional theory, from which the heat conductivity can be uniquely defined and computed using equilibrium ab initio molecular dynamics. When combined with a novel topological definition of atomic oxidation states, gauge invariance also sheds new light onto the mechanisms of charge transport in ionic conductors. The second principle, convec...
We present a transport model for molecular conduction involving an extended Hückel theoretical treat...
We review some recent results from the mathematical theory of transport of charge and spin in gapped...
The article is arranged as follows: In chapter 2 we introduce the Green's function technique in the ...
In this work, we elaborate on two recently discovered invariance principles, according to which tran...
Quantum simulation methods based on electronic-structure theory are deemed unfit to cope with atomic...
Thermal transport coefficients are independent of the specific microscopic expression for the energy...
According to the Green–Kubo theory of linear response, the conductivity of an electronically gapped ...
Various aspects of transport coefficients in quantum field theory are reviewed. We describe recent p...
The thermal conductivity of classical multicomponent fluids is seemingly affected by the intrinsic a...
The theory of transport phenomena in multicomponent electrolyte solutions is presented here through ...
Starting from a general $N$-band Hamiltonian with weak spatial and temporal variations, we derive a ...
We compute the electrical conductivity and shear viscosity at leading order in hot Quantum Electrody...
A formalism to describe steady-state electronic and thermal transport in the framework of density fu...
Density functional theory in the Kohn-Sham formulation is the most successful method in chemistry an...
This thesis is about current-density functional theory. Current plays a role in three important type...
We present a transport model for molecular conduction involving an extended Hückel theoretical treat...
We review some recent results from the mathematical theory of transport of charge and spin in gapped...
The article is arranged as follows: In chapter 2 we introduce the Green's function technique in the ...
In this work, we elaborate on two recently discovered invariance principles, according to which tran...
Quantum simulation methods based on electronic-structure theory are deemed unfit to cope with atomic...
Thermal transport coefficients are independent of the specific microscopic expression for the energy...
According to the Green–Kubo theory of linear response, the conductivity of an electronically gapped ...
Various aspects of transport coefficients in quantum field theory are reviewed. We describe recent p...
The thermal conductivity of classical multicomponent fluids is seemingly affected by the intrinsic a...
The theory of transport phenomena in multicomponent electrolyte solutions is presented here through ...
Starting from a general $N$-band Hamiltonian with weak spatial and temporal variations, we derive a ...
We compute the electrical conductivity and shear viscosity at leading order in hot Quantum Electrody...
A formalism to describe steady-state electronic and thermal transport in the framework of density fu...
Density functional theory in the Kohn-Sham formulation is the most successful method in chemistry an...
This thesis is about current-density functional theory. Current plays a role in three important type...
We present a transport model for molecular conduction involving an extended Hückel theoretical treat...
We review some recent results from the mathematical theory of transport of charge and spin in gapped...
The article is arranged as follows: In chapter 2 we introduce the Green's function technique in the ...