Organic electronic devices often consist of a sandwich structure containing several layers of disordered organic semiconductors. In the modeling of such devices it is essential that the charge transport across the organic heterojunctions is properly described. The presence of energetic disorder and of strong gradients in both the charge density and the electric field at the heterojunction complicates the use of continuum drift–diffusion approaches to calculate the electrical current, because of the discrete positions of the sites involved in the hopping transport of charges. We use the results of three-dimensional Monte Carlo simulations to construct boundary conditions in a one-dimensional continuum drift–diffusion approach that accurately...
The concept of transport energy is the most transparent theoretical approach to describe hopping tra...
Charge transport in polymeric or small-molecule organic semiconductors used in organic light-emittin...
Charge transport below the mobility edge, where the charge carriers are hopping between localized el...
Organic electronic devices often consist of a sandwich structure containing several layers of disord...
We present the results of Monte Carlo simulations of transport of charge carriers of a single type i...
Using Monte Carlo simulations, we revisited charge transport in degenerate disordered organic semico...
Application of a gate bias to an organic field-effect transistor leads to accumulation of charges in...
We present the results of a modeling study of the three-dimensional current density in single-carrie...
Charge transport in disordered organic semiconductors, which is governed by incoherent hopping betwe...
Charge transport plays a key role in defining the performance of organic-based devices such as light...
The description of the current-voltage relationship in disordered organic-semiconductor diodes is co...
We discuss drift–diffusion models for charge carrier transport in organic semiconductor devices. The...
This thesis is focused on on using Monte Carlo simulation to extract device relevant properties, suc...
The concept of transport energy is the most transparent theoretical approach to describe hopping tra...
Charge transport in polymeric or small-molecule organic semiconductors used in organic light-emittin...
Charge transport below the mobility edge, where the charge carriers are hopping between localized el...
Organic electronic devices often consist of a sandwich structure containing several layers of disord...
We present the results of Monte Carlo simulations of transport of charge carriers of a single type i...
Using Monte Carlo simulations, we revisited charge transport in degenerate disordered organic semico...
Application of a gate bias to an organic field-effect transistor leads to accumulation of charges in...
We present the results of a modeling study of the three-dimensional current density in single-carrie...
Charge transport in disordered organic semiconductors, which is governed by incoherent hopping betwe...
Charge transport plays a key role in defining the performance of organic-based devices such as light...
The description of the current-voltage relationship in disordered organic-semiconductor diodes is co...
We discuss drift–diffusion models for charge carrier transport in organic semiconductor devices. The...
This thesis is focused on on using Monte Carlo simulation to extract device relevant properties, suc...
The concept of transport energy is the most transparent theoretical approach to describe hopping tra...
Charge transport in polymeric or small-molecule organic semiconductors used in organic light-emittin...
Charge transport below the mobility edge, where the charge carriers are hopping between localized el...