Jiang Wei, Lee Seokyeong, Zhao Kaiying, Lee Kyuho, Han Hyowon, Oh JinWoo, Lee Hyeokjung, Kim Hyerim, Koo Chong Min, Park Cheolmin
Department of Materials Science and Engineering, Yonsei University, Yonsei-ro 50, Seodaemun-gu, Seoul 03722, Korea.
Materials Architecting Research Centre, Korea Institute of Science and Technology (KIST), Seoul 02792, Korea.
ACS Nano. 2022 Jun 28;16(6):9203-9213. doi: 10.1021/acsnano.2c01514. Epub 2022 May 19.
The development of electrodes with high conductivity, optical transparency, and reliable mechanical flexibility and stability is important for numerous solution-processed photoelectronic applications. Although transparent TiCT MXene electrodes with high conductivity are promising, their suitability for displays remains limited because of the high sheet resistance, which is caused by undesirable flake junctions and surface roughness. Herein, a flexible and transparent electrode has been fabricated that is suitable for a full-solution-processed quantum dot light-emitting diode (QLED). An MXene-silver nanowire (AgNW) hybrid electrode (MXAg) consists of a highly conductive AgNW network mixed with solution-processed MXene flakes. Efficient welding of wire-to-wire junctions with MXene flakes yields an electrode with a low sheet resistance and a high transparency of approximately 13.9 Ω sq and 83.8%, respectively. By employing a thin polymer buffer layer of poly(methyl methacrylate) (PMMA), followed by mild thermal treatment, a hybrid PMMA-based MXene-AgNW (MXAg@PMMA) electrode in which the work function of an MXAg hybrid FTE physically embedded in PMMA (MXAg@PMMA) can be tuned by controlling the amount of MXene in the hybrid film facilitates the development of a high-performance solution-processed QLED that exhibits maximum external quantum and current efficiencies of approximately 9.88% and 25.8 cd/A, respectively, with excellent bending stability. This work function-tunable flexible transparent electrode based on solution-processed nanoconductors provides a way to develop emerging high-performance, wearable, cost-effective, and soft electroluminescent devices.
开发具有高导电性、光学透明性以及可靠的机械柔韧性和稳定性的电极,对于众多溶液处理的光电子应用而言至关重要。尽管具有高导电性的透明TiCT MXene电极前景广阔,但由于由不良的薄片结和表面粗糙度导致的高薄层电阻,其在显示器方面的适用性仍然有限。在此,制备了一种适用于全溶液处理量子点发光二极管(QLED)的柔性透明电极。一种MXene-银纳米线(AgNW)混合电极(MXAg)由与溶液处理的MXene薄片混合的高导电AgNW网络组成。AgNW与MXene薄片之间线对线结的有效焊接产生了一种电极,其薄层电阻低,透明度高,分别约为13.9Ω/sq和83.8%。通过采用聚甲基丙烯酸甲酯(PMMA)的薄聚合物缓冲层,随后进行温和热处理,一种基于PMMA的混合MXene-AgNW(MXAg@PMMA)电极得以制备,其中物理嵌入PMMA(MXAg@PMMA)中的MXAg混合柔性透明电极(FTE)的功函数可通过控制混合膜中MXene的量来调节,这有助于开发一种高性能的溶液处理QLED,其最大外量子效率和电流效率分别约为9.88%和25.8 cd/A,且具有出色的弯曲稳定性。这种基于溶液处理纳米导体的功函数可调柔性透明电极,为开发新兴的高性能、可穿戴、经济高效且柔软的电致发光器件提供了一条途径。