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Drift-diffusion simulation of S-shaped current-voltage relations for organic semiconductor devices

2019, Doan, Duy Hai, Fischer, Axel, Fuhrmann, Jürgen, Glitzky, Annegret, Liero, Matthias

We present an electrothermal drift-diffusion model for organic semiconductor devices with Gauss-Fermi statistics and positive temperature feedback for the charge carrier mobilities. We apply temperature dependent Ohmic contact boundary conditions for the electrostatic potential and discretize the system by a finite volume based generalized Scharfetter-Gummel scheme. Using path-following techniques we demonstrate that the model exhibits S-shaped current-voltage curves with regions of negative differential resistance, which were only recently observed experimentally.

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Efficient coupling of inhomogeneous current spreading and dynamic electro-optical models for broad-area edge-emitting semiconductor devices

2017, Radziunas, Mindaugas, Zeghuzi, Anissa, Fuhrmann, Jürgen, Koprucki, Thomas, Wünsche, Hans-Jürgen, Wenzel, Hans, Bandelow, Uwe

We extend a 2 (space) + 1 (time)-dimensional traveling wave model for broad-area edgeemitting semiconductor lasers by a model for inhomogeneous current spreading from the contact to the active zone of the laser. To speedup the performance of the device simulations, we suggest and discuss several approximations of the inhomogeneous current density in the active zone.

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Unipolar drift-diffusion simulation of S-shaped current-voltage relations for organic semiconductor devices

2019, Fuhrmann, Jürgen, Doan, Duy Hai, Glitzky, Annegret, Liero, Matthias, Nika, Grigor

We discretize a unipolar electrothermal drift-diffusion model for organic semiconductor devices with Gauss--Fermi statistics and charge carrier mobilities having positive temperature feedback. We apply temperature dependent Ohmic contact boundary conditions for the electrostatic potential and use a finite volume based generalized Scharfetter-Gummel scheme. Applying path-following techniques we demonstrate that the model exhibits S-shaped current-voltage curves with regions of negative differential resistance, only recently observed experimentally.

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Efficient coupling of electro-optical and heat-transport models for broad-area semiconductor lasers

2018, Radziunas, Mindaugas, Fuhrmann, Jürgen, Zeghuzi, Anissa, Wünsche, Hans-Jürgen, Koprucki, Thomas, Brée, Carsten, Wenzel, Hans, Bandelow, Uwe

In this work, we discuss the modeling of edge-emitting high-power broad-area semiconductor lasers. We demonstrate an efficient iterative coupling of a slow heat transport (HT) model defined on multiple vertical-lateral laser cross-sections with a fast dynamic electro-optical (EO) model determined on the longitudinal-lateral domain that is a projection of the device to the active region of the laser. Whereas the HT-solver calculates temperature and thermally-induced refractive index changes, the EO-solver exploits these distributions and provides time-averaged field intensities, quasi-Fermi potentials, and carrier densities. All these time-averaged distributions are used repetitively by the HT-solver for the generation of the heat sources entering the HT problem solved in the next iteration step.