Breakthrough in Understanding Electrical Conductivity in Doped Organic Semiconductors
February 1, 2019 | TU DresdenEstimated reading time: 2 minutes

Researchers from the Dresden Integrated Center for Applied Physics and Photonic Materials (IAPP) and the Center for Advancing Electronics Dresden (cfaed) at TU Dresden, in cooperation with Stanford University (USA) and the Institute for Molecular Science in Okazaki (Japan), have identified the key parameters that influence electrical conductivity in doped organic conductors.
Organic semiconductors enable the fabrication of large-scale printed and mechanically flexible electronic applications, and have already successfully established themselves on the market for displays in the form of organic light-emitting diodes (OLEDs). In order to break into further market segments, however, improvements in performance are still needed. Doping is the answer. In semiconductor technology, doping refers to the targeted introduction of impurities (also called dopants) into the semiconductor material of an integrated circuit. These dopants function as intentional "disturbances" in the semiconductor that can be used to specifically control the behaviour of the charge carriers and thus the electrical conductivity of the original material. Even the smallest amounts of these can have a very strong influence on electrical conductivity. Molecular doping is an integral part of the majority of commercial organic electronics applications. Until now, however, an insufficient fundamental physical understanding of the transport mechanisms of charges in doped organic semiconductors has prevented a further increase in conductivity to match the best inorganic semiconductors such as silicon.
Researchers from the Dresden Integrated Center for Applied Physics and Photonic Materials (IAPP) and the Center for Advancing Electronics Dresden (cfaed) at TU Dresden, in cooperation with Stanford University and the Institute for Molecular Science in Okazaki, have now identified key parameters that influence electrical conductivity in doped organic conductors. The combination of experimental investigations and simulations has revealed that introducing dopant molecules into organic semiconductors creates complexes of two oppositely charged molecules. The properties of these complexes like the Coulomb attraction and the density of the complexes significantly determine the energy barriers for the transport of charge carriers and thus the level of electrical conductivity. The identification of important molecular parameters constitutes an important foundation for the development of new materials with even higher conductivity.
The results of this study have just been published in the renowned journal "Nature Materials". While the experimental work and a part of the simulations were conducted at the IAPP, the Computational Nanoelectronics Group at the cfaed under the leadership of Dr. Frank Ortmann verified the theoretical explanations for the observations by means of simulations at the molecular level. In doing so, a comprehensive foundation for new applications for organic semiconductor technology has been created.
About the Computational Nanoelectronics Group
The research group at the Center for Advancing Electronics Dresden (cfaed) headed by Dr. Frank Ortmann investigates electronic properties and the charge transport properties of innovative semiconductor materials. Organic semiconductors are currently at the heart of this research, which is being funded by the German Research Foundation as part of the Emmy Noether Program. The group has been located at cfaed since 2017.
Suggested Items
Gorilla Circuits Elevates PCB Precision with Schmoll’s Optiflex II Alignment System
06/23/2025 | Schmoll MaschinenGorilla Circuits, a leading PCB manufacturer based in Silicon Valley, has enhanced its production capabilities with the addition of Schmoll Maschinen’s Optiflex II Post-Etch Punch system—bringing a new level of precision to multilayer board fabrication.
Day 1: Cutting Edge Insights at the EIPC Summer Conference
06/17/2025 | Pete Starkey, I-Connect007The European Institute for the PCB Community (EIPC) Summer Conference took place this year in Edinburgh, Scotland, June 3-4. This is the second of three articles on the conference. The other two cover the keynote speeches and Day 2 of the technical conference. Below is a recap of the first day’s sessions.
American Made Advocacy: Supporting the Entire PCB Ecosystem—Materials to OEMs
06/17/2025 | Shane Whiteside -- Column: American Made AdvocacyWith the addition of RTX to PCBAA’s membership roster, we now represent the interests of companies in the entire PCB ecosystem. From material providers to OEMs, the insights of our collective members help us educate, advocate, and support legislation and policy favorable to America’s microelectronics manufacturers. The industry veterans who lead these companies provide valuable perspective, and their accumulated wisdom makes us an even stronger association.
Ventec Strengthens Commitment to Halogen-Free PCB Manufacturing in Europe
06/11/2025 | Ventec International GroupVentec International Group, the PCB materials innovator, manufacturer, supplier and one-stop shop for copper clad laminates, prepregs, as well as process consumables and PCB manufacturing equipment has established volume inventory of halogen-free FR4.1 and FR15.1 PCB materials at its European hub in Germany.
ACCM Joins Polar’s Speedstack Material Partner Program
06/10/2025 | Polar InstrumentsAdvance Chip & Circuit Materials has recently joined the Polar Speedstack Material Partner Program to ease the inclusion of ACCM's innovative Celeritas build up materials into the PCB supply chain.