Charge Transport in Organic Transistors Accounting for a Wide Distribution of Carrier Energies—Part II: TFT Modeling
Fabrizio Torricelli, Kevin M. O'neill, Gerwin H. Gelinck, Kris Myny, Jan Genoe, Eugenio Cantatore
Abstract
Open-access reader
Fabrizio Torricelli, Kevin M. O'neill, Gerwin H. Gelinck, Kris Myny, Jan Genoe, Eugenio Cantatore
Abstract
Open-access reader
A physically based analytical model of the drain current of an organic thin-film transistor is proposed. It is compared with the measurements collected from transistors made with different gate insulators, organic semiconductors, and fabrication processes. The extracted model parameters provide quantitative information on the charge transport in the active layer of the transistor. The analysis suggests that the tail states are an intrinsic property of the organic semiconductor, whereas the deep states arise from the interaction between the semiconductor and the gate insulator. The relative importance of tail and deep localized states is related to the operating regions of the transistor. The resulting mathematical expressions are simple and suitable for computer-aided design implementation.
OpenAlex reports 49 citations for this work. Citation counts describe recorded attention and do not establish research quality.
A contribution statement is not available in the OpenAlex record.
Method details are not available in the OpenAlex metadata.
Findings are not separately available in the OpenAlex metadata.
Limitations are not available in the OpenAlex metadata.
Application details are not available in the OpenAlex metadata.
A physically based analytical model of the drain current of an organic thin-film transistor is proposed. It is compared with the measurements collected from transistors made with different gate insulators, organic semiconductors, and fabrication processes. The extracted model parameters provide quantitative information on the charge transport in the active layer of the transistor. The analysis suggests that the tail states are an intrinsic property of the organic semiconductor, whereas the deep states arise from the interaction between the semiconductor and the gate insulator. The relative importance of tail and deep localized states is related to the operating regions of the transistor. The resulting mathematical expressions are simple and suitable for computer-aided design implementation.
Key concepts: Transistor, Organic semiconductor, Thin-film transistor, Optoelectronics, Materials science, Semiconductor, Insulator (electricity), Semiconductor device modeling