Quantum Efficiency Enhancement of Lead-Halide Perovskite Nanocrystal LEDs by Organic Lithium Salt Treatment
Tassilo Naujoks, Roshini Jayabalan, Christopher Kirsch, Fengshuo Zu,, Mukunda Mandal, Jan Wahl, Martin Waibel, Andreas Opitz, Norbert Koch, Denis, Andrienko, Marcus Scheele, and Wolfgang Br\"utting

TL;DR
This study demonstrates that organic lithium salt treatment significantly enhances the efficiency and stability of lead-halide perovskite nanocrystal LEDs by passivating surface defects and improving charge injection.
Contribution
Introduction of LiTFSI as a halide-free surface passivation method that boosts LED efficiency and stability beyond previous approaches.
Findings
Increased photoluminescence quantum yield
Extended exciton lifetime
4-7 times boost in external quantum efficiency
Abstract
Surface-defect passivation is key to achieving high photoluminescence quantum yield in lead halide perovskite nanocrystals. However, in perovskite light-emitting diodes these surface ligands also have to enable balanced charge injection into the nanocrystals to yield high efficiency and operational lifetime. In this respect, alkaline halides have been reported to passivate surface trap states and increase the overall stability of perovskite light emitters. On the one side, the incorporation of alkaline ions into the lead halide perovskite crystal structure is considered to counterbalance cation vacancies, while, on the other side, the excess halides are believed to stabilise the colloids. Here, we report an organic lithium salt, viz. LiTFSI, as a halide-free surface passivation on perovskite nanocrystals. We show that the treatment LiTFSI has multiple beneficial effects on lead halide…
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Taxonomy
TopicsPerovskite Materials and Applications · Quantum Dots Synthesis And Properties · Technostress in Professional Settings
