p-Laplace thermistor modeling of electrothermal feedback in organic semiconductors

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Date
2015
Volume
2082
Issue
Journal
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Publisher
Berlin : Weierstraß-Institut für Angewandte Analysis und Stochastik
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Abstract

In large-area Organic Light-Emitting Diodes (OLEDs) spatially inhomogeneous luminance at high power due to inhomogeneous current flow and electrothermal feedback can be observed. To describe these self-heating effects in organic semiconductors we present a stationary thermistor model based on the heat equation for the temperature coupled to a p-Laplace-type equation for the electrostatic potential with mixed boundary conditions. The p-Laplacian describes the non-Ohmic electrical behavior of the organic material. Moreover, an Arrhenius-like temperature dependency of the electrical conductivity is considered. We introduce a finite-volume scheme for the system and discuss its relation to recent network models for OLEDs. In two spatial dimensions we derive a priori estimates for the temperature and the electrostatic potential and prove the existence of a weak solution by Schauder's fixed point theorem.

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Keywords
p-Laplace, stationary thermistor model, nonlinear coupled system, finite-volume approximation, existence and boundedness, self-heating, Arrhenius-like conductivity law, organic light-emitting diode
Citation
Liero, M., Koprucki, T., Fischer, A., Scholz, R., & Glitzky, A. (2015). p-Laplace thermistor modeling of electrothermal feedback in organic semiconductors (Vol. 2082). Berlin : Weierstraß-Institut für Angewandte Analysis und Stochastik.
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