论文标题

通过表面配体修饰发出CDSE/CDS点发射二极管的性能

Enhancing the Performance of CdSe/CdS Dot-in- Rod Light Emitting Diodes via Surface Ligand Modification

论文作者

Rastogi, Prachi, Palazon, Francisco, Prato, Mirko, Di Stasio, Francesco, Krahne, Roman

论文摘要

胶体纳米晶体(NCS)上的表面配体在基于NCS的光电设备(如光伏细胞,光电探测器和发射二极管(LED)的性能中起着重要作用。一方面,NC的发射严重取决于表面的钝化,以最大程度地减少可以提供非辐射重组通道的陷阱状态。另一方面,NC膜的电气性能由构成从一个NC到其邻居的电荷运输障碍的配体主导。因此,已经采用了通过LigandExchange进行表面修饰来改善NC膜的电导率。但是,在发射器件中,由于它们可能对发射特性的有害影响,因此这种表面修饰更为重要。在这项工作中,我们研究了表面配体修饰对膜中CDSE/CD-In-Rods(DIRS)的光学和电气性能的作用,并研究了它们在全溶液处理的LED中的性能。 DIR膜保持高PLQY,约40-50%,其电致发光保留了PL的出色颜色纯度。在LED中,配体交换增强了亮度,从天然表面活性剂的2200 cd/m2增加到四倍,到交换的氨基乙醇配体的8500 cd/m2。此外,效率滚动,操作稳定性和保质期有显着提高,外部量子效率将从5.1%提高到5.4%。我们将这些改进与发射层的电导率增加以及电荷载体的更好电荷平衡联系起来。在这方面,我们进行了紫外光谱光谱(UPS),以获得LED结构的带对齐的更深层次的见解。

The surface ligands on colloidal nanocrystals (NCs) play an important role in the performance of NCs based optoelectronic devices such as photovoltaic cells, photodetectors and light emitting diodes (LEDs). On one hand, the NC emission depends critically on the passivation of the surface to minimize trap states that can provide non-radiative recombination channels. On the other hand, the electrical properties of NC films are dominated by the ligands that constitute the barriers for charge transport from one NC to its neighbor. Therefore, surface modifications via ligandexchange have been employed to improve the conductance of NC films. However, in light emitting devices, such surface modifications are more critical due to their possible detrimental effects on the emission properties. In this work, we study the role of surface ligand modifications on the optical and electrical properties of CdSe/CdS dot-in-rods (DiRs) in films, and investigate their performance in all-solution processed LEDs. The DiR films maintain high PLQY, around 40-50%, and their electroluminescence in the LED preserves the excellent color purity of the PL. In the LEDs, the ligand-exchange boosted the luminance, reaching a four-fold increase from 2200 cd/m2 for native surfactants to 8500 cd/m2 for the exchanged aminoethanethiol ligands. Moreover, the efficiency roll-off, operational stability, and shelf life are significantly improved, and the external quantum efficiency is modestly increased from 5.1 % to 5.4 %. We relate these improvements to the increased conductivity of the emissive layer, and to the better charge balance of the electrically injected carriers. In this respect, we performed ultraviolet photoelectron spectroscopy (UPS) to obtain deeper insight in the band alignment of the LED structure.

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