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January 30, 2020SHILAP Revista de lepidopterología188 citationsOpen Access

The role of photon recycling in perovskite light-emitting diodes

CCChangsoon ChoBZBaodan ZhaoGTGregory Tainter

Key Points

  • To determine the role of photon recycling in enabling high external quantum efficiencies (>20%) and aiding optical outcoupling in perovskite light-emitting diodes.
  • Conducted spatially-resolved photoluminescence and electroluminescence measurements on perovskite light-emitting diode architectures.
  • Performed optical modeling to simulate re-absorption and re-emission dynamics of photons trapped in substrate and waveguide modes.
  • Photon recycling can account for greater than 70% of total light emission in devices with sufficiently high radiation efficiency.
  • Parasitic absorption by injection electrodes serves as the primary limitation preventing current device designs from reaching theoretical 100% outcoupling efficiency.
  • Device architectures with reduced injection electrode areas are predicted to substantially mitigate parasitic losses and push outcoupling efficiency toward 100%.

Abstract

Perovskite light-emitting diodes have recently broken the 20% barrier for external quantum efficiency. These values cannot be explained with classical models for optical outcoupling. Here, we analyse the role of photon recycling (PR) in assisting light extraction from perovskite light-emitting diodes. Spatially-resolved photoluminescence and electroluminescence measurements combined with optical modelling show that repetitive re-absorption and re-emission of photons trapped in substrate and waveguide modes significantly enhance light extraction when the radiation efficiency is sufficiently high. In this manner, PR can contribute more than 70% to the overall emission, in agreement with recently-reported high efficiencies. While an outcoupling efficiency of 100% is theoretically possible with PR, parasitic absorption losses due to absorption from the electrodes are shown to limit practical efficiencies in current device architectures. To overcome the present limits, we propose a future configuration with a reduced injection electrode area to drive the efficiency toward 100%.

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Cite This Study

Cho et al. (2020) studied this question.

synapsesocial.com/papers/69de7efb4838c5c0bab0bf97https://doi.org/10.1038/s41467-020-14401-1
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