High electrical conductivity is a prerequisite for improving the performance of organic semiconductors for various applications and can be achieved through molecular doping. However, often the conductivity is enhanced only up to a certain optimum doping concentration, beyond which it decreases significantly. We combine analytical work and Monte Carlo simulations to demonstrate that carrier-carrier interactions can cause this conductivity decrease and reduce the maximum conductivity by orders of magnitude, possibly in a broad range of materials. Using Monte Carlo simulations, we disentangle the effect of carrier-carrier interactions from carrier-dopant interactions. Coulomb potentials of ionized dopants are shown to decrease the conductivity...
The influence of doping on the process of charge injection from a metal electrode into a model organ...
The mechanism by which molecular dopants donate free charge carriers to the host organic semiconduct...
Increasing the amount of charge carriers by molecular doping is important to improve the function of...
High electrical conductivity is a prerequisite for improving the performance of organic semiconducto...
Doping to enhance the electrical conductivity of organic semiconductors is not without its challenge...
Ionizing chemical dopants are widely used in organic semiconductors to enhance the charge transport ...
Organic semiconductors are excellent candidates for low temperature thermoelectric generators. Howev...
International audienceThe control over material properties attainable through molecular doping is es...
We report an unusual transition in the conductivity of an organic semiconductor upon doping: For low...
Doped organic semiconductors typically exhibit a thermal activation of their electrical conductivity...
Doped organic semiconductors are critical to emerging device applications, including thermoelectrics...
Conductivity doping of organic semiconductors is an essential prerequisite for many organic devices,...
Many applications of organic semiconductors require high electrical conductivities and hence high do...
The properties of organic semiconductors make them well-suited for certain applications in electroni...
Doped organic semiconductors are critical to emerging device applications, including thermoelectrics...
The influence of doping on the process of charge injection from a metal electrode into a model organ...
The mechanism by which molecular dopants donate free charge carriers to the host organic semiconduct...
Increasing the amount of charge carriers by molecular doping is important to improve the function of...
High electrical conductivity is a prerequisite for improving the performance of organic semiconducto...
Doping to enhance the electrical conductivity of organic semiconductors is not without its challenge...
Ionizing chemical dopants are widely used in organic semiconductors to enhance the charge transport ...
Organic semiconductors are excellent candidates for low temperature thermoelectric generators. Howev...
International audienceThe control over material properties attainable through molecular doping is es...
We report an unusual transition in the conductivity of an organic semiconductor upon doping: For low...
Doped organic semiconductors typically exhibit a thermal activation of their electrical conductivity...
Doped organic semiconductors are critical to emerging device applications, including thermoelectrics...
Conductivity doping of organic semiconductors is an essential prerequisite for many organic devices,...
Many applications of organic semiconductors require high electrical conductivities and hence high do...
The properties of organic semiconductors make them well-suited for certain applications in electroni...
Doped organic semiconductors are critical to emerging device applications, including thermoelectrics...
The influence of doping on the process of charge injection from a metal electrode into a model organ...
The mechanism by which molecular dopants donate free charge carriers to the host organic semiconduct...
Increasing the amount of charge carriers by molecular doping is important to improve the function of...