Origin of Reduced Polaron Recombination in Organic Semiconductor Devices
arXiv:0907.2428 · doi:10.1103/PhysRevB.80.075203
Abstract
We propose a model to explain the reduced bimolecular recombination rate found in state-of-the-art bulk heterojunction solar cells. When compared to the Langevin recombination, the experimentally observed rate is one to four orders of magnitude lower, but gets closer to the Langevin case for low temperatures. Our model considers the organic solar cell as device with carrier concentration gradients, which form due to the electrode/blend/electrode device configuration. The resulting electron concentration under working conditions of a solar cell is higher at the cathode than at the anode, and vice versa for holes. Therefore, the spatially dependent bimolecular recombination rate, proportional to the local product of electron and hole concentration, is much lower as compared to the calculation of the recombination rate based on the extracted and thus averaged charge carrier concentrations. We consider also the temperature dependence of the recombination rate, which can for the first time be described with our model.
7 pages, 6 figures
References in corpus (3)
Cited by in corpus (13)
- S-shaped current-voltage characteristics of organic solar devices
- Oxygen doping of P3HT:PCBM blends: Influence on trap states, charge carrier mobility and solar cell performance
- Nongeminate and Geminate Recombination in PTB7:PCBM solar cells
- Encounter-Limited Charge Carrier Recombination in Phase Separated Organic Semiconductor Blends
- Organic solar cell efficiencies under the aspect of reduced surface recombination velocities
- Nongeminate recombination in neat P3HT and P3HT:PCBM blend films
- Comment on "Interface state recombination in organic solar cells"
- Direct and charge transfer mediated photogeneration in polymer-fullerene bulk heterojunction solar cells
- The asymmetric quantum Rabi model in the polaron picture
- Method for characterizing bulk recombination using photoinduced absorption
- Bimolecular Recombination of Charge Carriers in Polar Amorphous Organic Semiconductors: Effect of Spatial Correlation of the Random Energy Landscape
- Enhanced Bimolecular Recombination of Charge Carriers in Amorphous Organic Semiconductors: Overcoming the Langevin Limit
- Rethinking Charge Transport and Recombination in Donor-diluted Organic Solar Cells