Advancing Scalability and Sustainability of Perovskite Light-Emitting Diodes Through the Microwave Synthesis of Nanocrystals

IF 13 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Thais Caroline Almeida da Silva, Rafael S. Sánchez, Jaume-Adrià Alberola-Borràs, Rosario Vidal, Iván Mora-Seró, Beatriz Julián-López
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Abstract

In recent years, perovskite light-emitting diodes have witnessed a remarkable evolution in both efficiency and luminance levels. Nonetheless, the production of such devices typically relies on protracted synthesis procedures at elevated temperatures and vacuum/inert conditions (e.g. hot-injection synthesis), thus rendering them technically unsuitable for extensive display and/or lighting applications manufacturing. Although alternative synthetic protocols have been proposed, e.g. ligand-assisted reprecipitation, ultrasonic and microwave-based methods, their suitability for the construction of high-performing light-emitting diodes has been reported in only a few studies. In this study, we demonstrate the fabrication of highly efficient lighting devices based on CsPbBr3 colloidal perovskite nanocrystals synthesized by a fast, energetically efficient, and up-scalable microwave-assisted method. These nanocrystals exhibit an impressive photoluminescence quantum yield of 66.8% after purification, with a very narrow PL spectrum centered at 514 nm with a full width at half-maximum of 20 nm. Similarly, the PeLEDs achieve a maximum external quantum efficiency of 23.4%, a maximum current efficiency of 71.6 Cd A−1, and a maximum luminance level that exceeds 4.7 × 104 Cd m−2. Additionally, a significantly lower energy consumption for microwave-mediated synthesis compared with hot injection is demonstrated. These findings suggest that this synthetic procedure emerges as an outstanding and promising method towards a scalable and sustainable fabrication of high-quality perovskite light-emitting diodes.

Abstract Image

Abstract Image

通过微波合成纳米晶体提高 Perovskite 发光二极管的可扩展性和可持续性
近年来,过氧化物发光二极管在效率和亮度方面都有了显著的发展。然而,这类器件的生产通常依赖于在高温和真空/惰性条件下进行的漫长合成过程(如热注射合成),因此在技术上不适合广泛的显示和/或照明应用制造。虽然已经提出了一些替代合成方案,如配体辅助再沉淀法、超声波和微波法,但只有少数研究报告了这些方法是否适用于制造高性能发光二极管。在本研究中,我们展示了基于 CsPbBr3 胶体包晶石纳米晶体的高效照明设备的制造过程,这种纳米晶体是通过一种快速、高能效和可升级的微波辅助方法合成的。这些纳米晶体纯化后的光量子产率高达 66.8%,具有以 514 nm 为中心、半最大值全宽为 20 nm 的非常窄的 PL 光谱。同样,PeLED 的最大外部量子效率为 23.4%,最大电流效率为 71.6 Cd A-1,最大亮度超过 4.7 × 104 Cd m-2。此外,与热注入相比,微波介导合成的能耗明显降低。这些研究结果表明,这种合成方法是一种杰出而有前途的方法,可用于大规模、可持续地制造高质量的包晶发光二极管。
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来源期刊
Energy & Environmental Materials
Energy & Environmental Materials MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
17.60
自引率
6.00%
发文量
66
期刊介绍: Energy & Environmental Materials (EEM) is an international journal published by Zhengzhou University in collaboration with John Wiley & Sons, Inc. The journal aims to publish high quality research related to materials for energy harvesting, conversion, storage, and transport, as well as for creating a cleaner environment. EEM welcomes research work of significant general interest that has a high impact on society-relevant technological advances. The scope of the journal is intentionally broad, recognizing the complexity of issues and challenges related to energy and environmental materials. Therefore, interdisciplinary work across basic science and engineering disciplines is particularly encouraged. The areas covered by the journal include, but are not limited to, materials and composites for photovoltaics and photoelectrochemistry, bioprocessing, batteries, fuel cells, supercapacitors, clean air, and devices with multifunctionality. The readership of the journal includes chemical, physical, biological, materials, and environmental scientists and engineers from academia, industry, and policy-making.
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