We investigated the impact of singly occupied molecular orbital (SOMO) energy on the n-doping efficiency of benzimidazole derivatives. By designing and synthesizing a series of new air-stable benzimidazole-based dopants with different SOMO energy levels, we demonstrated that an increase of the dopant SOMO energy by only similar to 0.3 eV enhances the electrical conductivity of a benchmark electron-transporting naphthalenediimide-bithiophene polymer by more than 1 order of magnitude. By combining electrical, X-ray diffraction, and electron paramagnetic resonance measurements with density functional theory calculations and analytical transport simulations, we quantitatively characterized the conductivity, Seebeck coefficient, spin density, an...
Naphthalenediimide (NDI)-based polymers co-polymerized with thienyl units are an interesting class o...
We study the influence of the molecular energy levels on doped organic layers, using four different ...
© 2012 American Institute of Physics. The electronic version of this article is the complete one and...
We investigated the impact of singly occupied molecular orbital (SOMO) energy on the n-doping effici...
Doped polymer semiconductors are actively studied for opto- and micro-electronic applications includ...
A common way of determining the majority charge carriers of pristine and doped semiconducting polyme...
Nowadays a growing interest is devoted to molecular reductants for solution-processable organic semi...
Molecular doping is a method used to increase the charge carrier concentration within organic semico...
We investigated the influence of backbone regiochemistry on the conductivity, charge density, and po...
N-doping of conjugated polymers either requires a high dopant fraction or yields a low electrical co...
Semiconducting polymers are a class of materials that engenders the solution processibility, mechani...
Molecular doping is the key to enabling organic electronic devices, however, the design strategies t...
Naphthalenediimide (NDI)-based polymers co-polymerized with thienyl units are an interesting class o...
We study the influence of the molecular energy levels on doped organic layers, using four different ...
© 2012 American Institute of Physics. The electronic version of this article is the complete one and...
We investigated the impact of singly occupied molecular orbital (SOMO) energy on the n-doping effici...
Doped polymer semiconductors are actively studied for opto- and micro-electronic applications includ...
A common way of determining the majority charge carriers of pristine and doped semiconducting polyme...
Nowadays a growing interest is devoted to molecular reductants for solution-processable organic semi...
Molecular doping is a method used to increase the charge carrier concentration within organic semico...
We investigated the influence of backbone regiochemistry on the conductivity, charge density, and po...
N-doping of conjugated polymers either requires a high dopant fraction or yields a low electrical co...
Semiconducting polymers are a class of materials that engenders the solution processibility, mechani...
Molecular doping is the key to enabling organic electronic devices, however, the design strategies t...
Naphthalenediimide (NDI)-based polymers co-polymerized with thienyl units are an interesting class o...
We study the influence of the molecular energy levels on doped organic layers, using four different ...
© 2012 American Institute of Physics. The electronic version of this article is the complete one and...