Fu Min, Santaella Juan José, Evans Stephen D, Critchley Kevin
School of Physics and Astronomy, University of Leeds, Leeds LS2 9JT, U.K.
Department of Electronics, VALEO Lighting Systems, Martos 23600, Spain.
ACS Appl Mater Interfaces. 2025 Apr 16;17(15):22952-22962. doi: 10.1021/acsami.5c01588. Epub 2025 Apr 3.
InP quantum dots (QDs) have excellent optoelectronic properties and less toxicity than Cd-based QDs, making them excellent candidates for QD-based light-emitting diodes (QLEDs). Inkjet printing is a promising technology to replace other methods, such as spin coating, vacuum evaporation, and lithography, for assembling lower-cost and high-resolution QLEDs. However, inkjet printing faces the challenge of a coffee ring effect. To address this, we combined the solutal and thermal Marangoni effects by employing a binary solvent system (cyclohexylbenzene and decane) and heating the substrate during printing. The thermal Marangoni effect, which has been underexplored in previous studies of inkjet-printed QLEDs, is a focal point of this work. Uniform patterns were obtained with a volume ratio of 20% decane and a substrate temperature of 60 °C. The evaporation of the solvents from QD ink droplets behaved differently at different substrate temperatures, i.e., stick-jump mode at 20 and 40 °C and stick-slide mode at 60 °C. Consequently, the inkjet-printed InP QLEDs without the coffee ring effect were successfully assembled. Furthermore, increasing the electron transport layer (ETL) thickness reduced trap density when it was exposed to the air and prevented the deterioration of the QD layer from water vapor and oxygen exposure. This is likely due to the decrease in oxygen vacancies in the ETL, mitigating the defect-dependent exciton quenching at the ETL/QD interface.
磷化铟量子点(QDs)具有优异的光电性能,且毒性比镉基量子点小,使其成为基于量子点的发光二极管(QLEDs)的理想候选材料。喷墨打印是一种很有前景的技术,可替代其他方法,如旋涂、真空蒸发和光刻,用于组装成本更低、分辨率更高的QLEDs。然而,喷墨打印面临着咖啡环效应的挑战。为了解决这个问题,我们通过采用二元溶剂体系(环己基苯和癸烷)并在打印过程中加热基板,将溶质和热马兰戈尼效应结合起来。热马兰戈尼效应在以前的喷墨打印QLEDs研究中尚未得到充分探索,是这项工作的一个重点。在癸烷体积比为20%且基板温度为60°C的条件下获得了均匀的图案。量子点墨滴中溶剂的蒸发在不同的基板温度下表现不同,即在20°C和40°C时为粘-跳模式,在60°C时为粘-滑模式。因此,成功组装了没有咖啡环效应的喷墨打印磷化铟QLEDs。此外,增加电子传输层(ETL)的厚度可以降低其暴露在空气中时的陷阱密度,并防止量子点层因水蒸气和氧气暴露而劣化。这可能是由于ETL中氧空位的减少,减轻了ETL/量子点界面处依赖缺陷的激子猝灭。