Complete polarization of electronic spins in OLEDs
Tobias Scharff, Wolfram Ratzke, Jonas Zipfel, Philippe Klemm,, Sebastian Bange, John M. Lupton

TL;DR
This paper demonstrates complete electronic spin polarization in OLEDs at low temperatures and high magnetic fields, revealing how spin dynamics influence exciton formation and electroluminescence.
Contribution
It introduces a direct method to probe spin statistics in OLEDs, highlighting the role of g-factor distributions and triplet exciton interactions in spin polarization.
Findings
Spin polarization follows Boltzmann activation at low currents.
g-factor distribution causes singlet-triplet mixing, reducing singlet formation.
Spin polarization effects are independent of current and temperature.
Abstract
At low temperatures and high magnetic fields, electron and hole spins in an organic light-emitting diode (OLED) become polarized so that recombination preferentially forms molecular triplet excited-state species. For low device currents, magnetoelectroluminescence (MEL) perfectly follows Boltzmann activation, implying a virtually complete polarization outcome. As the current increases, the MEL effect is reduced because spin polarization is suppressed by the reduction in carrier residence time within the device. Under these conditions, an additional field-dependent process affecting the spin-dependent recombination emerges, which appears to relate to the build-up of triplet excitons and the interaction with free charge carriers. Suppression of the EL at high fields on its own does not, strictly, prove electronic spin polarization. We therefore probe changes in the spin statistics of…
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