Doping to enhance the electrical conductivity of organic semiconductors is not without its challenges: The efficacy of this process depends on many factors and it is not always clear how to remedy poor doping. In the case of doping with salts, one of the possible causes of poor doping is a limited yield of integer charge transfer resulting in the presence of both cations and anions in the film. The charge of such ions can severely limit the electrical conductivity, but their presence is not easily determined. Here we introduce a set of simple conductivity measurements to determine whether poor doping in the case where the dopant is a salt is due to limited integer charge transfer. By tracking how the conductivity changes over time when appl...
Molecular doping-the use of redox-active small molecules as dopants for organic semiconductors-has s...
The performance of organic field-effect transistors is still severely limited by factors such as con...
One of the most commonly used cathode interlayers for increasing the efficiency of electron injectio...
Doping to enhance the electrical conductivity of organic semiconductors is not without its challenge...
Conductivity doping of organic semiconductors is an essential prerequisite for many organic devices,...
High electrical conductivity is a prerequisite for improving the performance of organic semiconducto...
Ionizing chemical dopants are widely used in organic semiconductors to enhance the charge transport ...
A method to determine the doping induced charge carrier profiles in lightly and moderately doped org...
One of the strategies to improve the efficiency of organic light emitting diodes (OLEDs) is to dope ...
Doping is an extremely important process where intentional insertion of impurities in semiconductors...
Molecular doping is an important strategy to improve the charge transport properties of organic semi...
Abstract: Molecular doping—the use of redox‐active small molecules as dopants for organic semiconduc...
This article was supported by the Open Access Publication Fund of Humboldt-Universität zu Berlin.Mol...
Although doping is a cornerstone of the inorganic semiconductor industry, most devices using organic...
Molecular doping-the use of redox-active small molecules as dopants for organic semiconductors-has s...
The performance of organic field-effect transistors is still severely limited by factors such as con...
One of the most commonly used cathode interlayers for increasing the efficiency of electron injectio...
Doping to enhance the electrical conductivity of organic semiconductors is not without its challenge...
Conductivity doping of organic semiconductors is an essential prerequisite for many organic devices,...
High electrical conductivity is a prerequisite for improving the performance of organic semiconducto...
Ionizing chemical dopants are widely used in organic semiconductors to enhance the charge transport ...
A method to determine the doping induced charge carrier profiles in lightly and moderately doped org...
One of the strategies to improve the efficiency of organic light emitting diodes (OLEDs) is to dope ...
Doping is an extremely important process where intentional insertion of impurities in semiconductors...
Molecular doping is an important strategy to improve the charge transport properties of organic semi...
Abstract: Molecular doping—the use of redox‐active small molecules as dopants for organic semiconduc...
This article was supported by the Open Access Publication Fund of Humboldt-Universität zu Berlin.Mol...
Although doping is a cornerstone of the inorganic semiconductor industry, most devices using organic...
Molecular doping-the use of redox-active small molecules as dopants for organic semiconductors-has s...
The performance of organic field-effect transistors is still severely limited by factors such as con...
One of the most commonly used cathode interlayers for increasing the efficiency of electron injectio...