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Charge carrier thermalization in organic diodes
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AbstractCharge carrier mobilities of organic semiconductors are often characterized using steady-state measurements of space charge limited diodes. These measurements assume that charge carriers are in a steady-state equilibrium. In reality, however, energetically hot carriers are introduces by photo-excitation and injection into highly energetic sites from the electrodes. These carriers perturb the equilibrium density of occupied states and therefore change the overall charge transport properties. In this paper, we look into the effect of energetically hot carriers on the charge transport in organic semiconductors using steady state kinetic Monte Carlo simulations. For injected hot carriers in a typical organic semiconductor, rapid energetic relaxation occurs in the order of tens of nanoseconds, which is much faster than the typical transit time of a charge carrier throught the device. Furthermore, we investigate the impact of photo-generated carriers on the steady-state mobility. For a typical organic voltaic material, an increase in mobility of a factor of 1.1 is found. Therefore, we conclude that the impact of energetically hot carriers on normal device operation is limited.
Title: Charge carrier thermalization in organic diodes
Description:
AbstractCharge carrier mobilities of organic semiconductors are often characterized using steady-state measurements of space charge limited diodes.
These measurements assume that charge carriers are in a steady-state equilibrium.
In reality, however, energetically hot carriers are introduces by photo-excitation and injection into highly energetic sites from the electrodes.
These carriers perturb the equilibrium density of occupied states and therefore change the overall charge transport properties.
In this paper, we look into the effect of energetically hot carriers on the charge transport in organic semiconductors using steady state kinetic Monte Carlo simulations.
For injected hot carriers in a typical organic semiconductor, rapid energetic relaxation occurs in the order of tens of nanoseconds, which is much faster than the typical transit time of a charge carrier throught the device.
Furthermore, we investigate the impact of photo-generated carriers on the steady-state mobility.
For a typical organic voltaic material, an increase in mobility of a factor of 1.
1 is found.
Therefore, we conclude that the impact of energetically hot carriers on normal device operation is limited.
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