We develop a theoretical framework for describing steady-state quantum transport phenomena, based on the general maximum-entropy principle of nonequilibrium statistical mechanics. The general form of the many-body density matrix is derived, which contains the invariant part of the current operator that guarantees the nonequilibrium and steady-state character of the ensemble. Several examples of the theory are given, demonstrating the relationship of the present treatment to the widely used scattering-state occupation schemes at the level of the self-consistent single-particle approximation. The latter schemes are shown not to maximize the entropy, except in certain limits
We review and further develop a mathematical framework for non-equilibrium quantum statistical mecha...
We study the time-dependent transmission of entanglement entropy through an out-of-equilibrium model...
International audienceA generic feature of systems with long-range interactions is the presence of {...
Presently, the main methods for describing a nonequilibrium charge-transporting steady state are bas...
We present an approach to steady-state mesoscopic transport based on the maximum entropy principle f...
We present an approach to steady-state mesoscopic transport based on the maximum entropy principle f...
We present an approach to steady-state mesoscopic transport based on the masimum entropy principle f...
The quantum maximum entropy principle is proposed here as a rigorous procedure that should be employ...
These notes are an expanded and revised version of the lectures given by the second and fourth autor...
This paper reviews a new theory for non-equilibrium statistical mechanics. This gives the non-equili...
Abstract Using random matrix techniques and the theory of Matrix Product States we show that reduced...
In this minireview we will discuss recent progress in the analytical study of current-carrying non-e...
In this minireview we will discuss recent progress in the analytical study of current-carrying non-e...
We develop an exact quantum thermodynamic description for a noninteracting nanoscale steady state th...
Classical statistical mechanical density maximizes entropy subject to constraints i.e. one has the M...
We review and further develop a mathematical framework for non-equilibrium quantum statistical mecha...
We study the time-dependent transmission of entanglement entropy through an out-of-equilibrium model...
International audienceA generic feature of systems with long-range interactions is the presence of {...
Presently, the main methods for describing a nonequilibrium charge-transporting steady state are bas...
We present an approach to steady-state mesoscopic transport based on the maximum entropy principle f...
We present an approach to steady-state mesoscopic transport based on the maximum entropy principle f...
We present an approach to steady-state mesoscopic transport based on the masimum entropy principle f...
The quantum maximum entropy principle is proposed here as a rigorous procedure that should be employ...
These notes are an expanded and revised version of the lectures given by the second and fourth autor...
This paper reviews a new theory for non-equilibrium statistical mechanics. This gives the non-equili...
Abstract Using random matrix techniques and the theory of Matrix Product States we show that reduced...
In this minireview we will discuss recent progress in the analytical study of current-carrying non-e...
In this minireview we will discuss recent progress in the analytical study of current-carrying non-e...
We develop an exact quantum thermodynamic description for a noninteracting nanoscale steady state th...
Classical statistical mechanical density maximizes entropy subject to constraints i.e. one has the M...
We review and further develop a mathematical framework for non-equilibrium quantum statistical mecha...
We study the time-dependent transmission of entanglement entropy through an out-of-equilibrium model...
International audienceA generic feature of systems with long-range interactions is the presence of {...