Zhang Yiyue, Keshavarz Masoumeh, Debroye Elke, Fron Eduard, Rodríguez González Miriam Candelaria, Naumenko Denys, Amenitsch Heinz, Van de Vondel Joris, De Feyter Steven, Heremans Paul, Roeffaers Maarten B J, Qiu Weiming, Pradhan Bapi, Hofkens Johan
Molecular Imaging and Photonics, Department of Chemistry, KU Leuven, Celestijnenlaan 200F, Leuven, 3001, Belgium.
Institute of Inorganic Chemistry, Graz University of Technology, Stremayrgasse 9/V, Graz, 8010, Austria.
Nanophotonics. 2021 Apr 29;10(8):2145-2156. doi: 10.1515/nanoph-2021-0037. eCollection 2020 Jun.
Lead halide perovskites have attracted tremendous attention in photovoltaics due to their impressive optoelectronic properties. However, the poor stability of perovskite-based devices remains a bottleneck for further commercial development. Two-dimensional perovskites have great potential in optoelectronic devices, as they are much more stable than their three-dimensional counterparts and rapidly catching up in performance. Herein, we demonstrate high-quality two-dimensional novel perovskite thin films with alternating cations in the interlayer space. This innovative perovskite provides highly stable semiconductor thin films for efficient near-infrared light-emitting diodes (LEDs). Highly efficient LEDs with tunable emission wavelengths from 680 to 770 nm along with excellent operational stability are demonstrated by varying the thickness of the interlayer spacer cation. Furthermore, the best-performing device exhibits an external quantum efficiency of 3.4% at a high current density (J) of 249 mA/cm and remains above 2.5% for a J up to 720 mA cm, leading to a high radiance of 77.5 W/Sr m when driven at 6 V. The same device also shows impressive operational stability, retaining almost 80% of its initial performance after operating at 20 mA/cm for 350 min. This work provides fundamental evidence that this novel alternating interlayer cation 2D perovskite can be a promising and stable photonic emitter.
卤化铅钙钛矿因其令人印象深刻的光电特性而在光伏领域引起了极大关注。然而,基于钙钛矿的器件稳定性较差仍然是其进一步商业发展的瓶颈。二维钙钛矿在光电器件中具有巨大潜力,因为它们比三维钙钛矿稳定得多,并且在性能上正在迅速追赶。在此,我们展示了层间空间中具有交替阳离子的高质量二维新型钙钛矿薄膜。这种创新的钙钛矿为高效近红外发光二极管(LED)提供了高度稳定的半导体薄膜。通过改变层间间隔阳离子的厚度,展示了发射波长在680至770 nm之间可调且具有出色工作稳定性的高效LED。此外,性能最佳的器件在249 mA/cm的高电流密度(J)下表现出3.4%的外量子效率,在J高达720 mA/cm时仍保持在2.5%以上,在6 V驱动下产生77.5 W/Sr·m的高辐射亮度。同一器件还表现出令人印象深刻的工作稳定性,在20 mA/cm下运行350分钟后仍保持其初始性能的近80%。这项工作提供了基本证据,证明这种新型交替层间阳离子二维钙钛矿可以成为一种有前途且稳定的光子发射体。