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Lecithin Capping Ligands Enable Ultrastable Perovskite-Phase CsPbI 3 Quantum Dots for Rec. 2020 Bright-Red Light-Emitting Diodes.

Wasim J MirAhmed AlamoudiJun YinKhursand E YorovPartha MaityRounak NaphadeBingyao ShaoJiayi WangMuhammad Naufal LintangpradiptoSaidkhodzha NematulloevAbdul-Hamid EmwasAlessandro GenoveseOmar F MohammedOsman M Bakr
Published in: Journal of the American Chemical Society (2022)
Bright-red light-emitting diodes (LEDs) with a narrow emission line width that emit between 620 and 635 nm are needed to meet the latest industry color standard for wide color gamut displays, Rec. 2020. CsPbI 3 perovskite quantum dots (QDs) are one of the few known materials that are ideally suited to meet these criteria. Unfortunately, CsPbI 3 perovskite QDs are prone to transform into a non-red-emitting phase and are subject to further degradation mechanisms when their luminescence wavelength is tuned to match that of the Rec. 2020 standard. Here, we show that zwitterionic lecithin ligands can stabilize the perovskite phase of CsPbI 3 QDs for long periods in air for at least 6 months compared to a few days for control samples. LEDs fabricated with our ultrastable lecithin-capped CsPbI 3 QDs exhibit an external quantum efficiency (EQE) of 7.1% for electroluminescence centered at 634 nm─a record for all-inorganic perovskite nanocrystals in Rec. 2020 red. Our devices achieve a maximum luminance of 1391 cd/m 2 at 7.5 V, and their operational half-life is 33 min ( T 50 ) at 200 cd/m 2 ─a 10-fold enhancement compared to control samples. Density functional theory results suggest that the surface strain in CsPbI 3 QDs capped with the conventional ligands, oleic acid and oleylamine, contributes to the instability of the perovskite structural phase. On the other hand, lecithin binding induces virtually no surface strain and shows a stronger binding tendency for the CsPbI 3 surface. Our study highlights the tremendous potential of zwitterionic ligands in stabilizing the perovskite phase and particle size of CsPbI 3 QDs for various optoelectronic applications.
Keyphrases
  • room temperature
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  • density functional theory
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