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Highly efficient flexible OLEDs based on double-sided nano-dimpled substrate (PVB) with embedded AgNWs and TiO_2 nanoparticle for internal and external light extraction

机译:基于双面纳米凹凸基底(PVB)的高效柔性OLED,其具有嵌入式Agnws和TiO_2纳米粒子,用于内部和外部光提取

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A light extraction structure and a flexible electrode have been developed to enhance the electroluminescence (EL) efficiency of flexible organic light-emitting diodes (FOLEDs). However, these structures are still influenced by optical losses, poor electrical stability, and low throughput, and are not suitable to be adopted into FOLEDs due to the surface roughness problem, low flexibility/adhesion, complicated process, and high temperature/ pressure process. Here, to solve these problems, we demonstrate embedded Ag nanowires (AgNWs) in flexible substrate and highly flexible random nano pattern via easy/low-cost solution form process at atmospheric pressure and low temperature without any additional material. This study demonstrates an internal and external light extraction structure composed of double-sided nano-dimpled substrate PVB (DndP), which is directly fabricated on both sides of a flexible substrate (polyvinyl butyral, PVB) only in itself without additional material via the easy/low-cost transferring process using the anodic aluminum oxide (AAO) template by an anodization process-based solution form at atmospheric pressure and low temperature. Therefore, because the DndP and the substrate are composed of the same material, PVB, there is no light loss between their interfaces. In addition, a high-refractive-index TiO2 nanoparticle, for the scattering effect, and AgNWs, for electrode flexibility, are embedded into the DndP via the covering method using the solution form. Such structures exhibit extraordinary mechanical flexibility due to the AgNWs embedded in the PVB substrate. Therefore, FOLEDs using such structures can be well adapted to flexible/rollable/foldable displays and wearable application devices. Moreover, the corrugated surface of FOLEDs by such structures can improve the current flow through increased surface area of electrodes and extract the trapped light through the scattering effect (Rayleigh, Mie), reducing the total reflection and coupled photon in metal/dielectric. In addition, the FOLEDs with such structures show color/ spectrum-stable property and independence of viewing angles owing to their random nature. The final green FOLEDs with DndP, embedded scattering TiO2 nanoparticle, and embedded AgNWs&PEDOT:PSS demonstrate an outstanding EL efficiency enhancement ratio of 2.23 time via internal and external light extraction without electrical short.
机译:已经开发了光提取结构和柔性电极以增强柔性有机发光二极管(FOLEDS)的电致发光(EL)效率。然而,这些结构仍然受到光学损耗,电稳定性差和低通量的影响,并且由于表面粗糙度问题,低柔韧性/粘附,复杂的工艺和高温/压力方法而不适合于开发物中。在这里,为了解决这些问题,我们通过易于/低成本的溶液形式工艺在柔性基板中展示柔性基板的嵌入式AG纳米线(AgNWS),在大气压和低温下,没有任何额外的材料。本研究演示了由双面纳米凹凸基板PVB(DNDP)组成的内部和外部光提取结构,其在柔性基板(聚乙烯丁醛,PVB)的两侧直接制造在柔性基板(聚乙烯醇,PVB)的两侧,而无需额外的材料,通过容易/低成本转移过程使用阳极氧化铝(AAO)模板通过阳极氧化过程基溶液在大气压和低温下形成。因此,因为DNDP和基板由相同的材料,PVB构成,所以它们的界面之间没有光损失。另外,用于散射效应和用于电极柔性的高折射率TiO2纳米颗粒通过使用溶液形式嵌入DNDP中的DNDP中。由于PVB基板中的AgNW,这种结构表现出非凡的机械柔性。因此,使用这种结构的FOLEDS可以很好地适用于柔性/可卷/可折叠显示器和可穿戴应用装置。此外,通过这种结构的波纹状表面可以通过增加电极的表面积并通过散射效果(瑞利,MIE)提取捕获的光,从而降低金属/电介质中的总反射和耦合光子的电流增加电流。此外,由于随机性质,具有这种结构的彩色/光谱稳定性和观察角度的独立性。具有DNDP,嵌入式散射TiO2纳米粒子和嵌入式AgNWS&PEDOT的最终绿叶:PSS通过内部和外部光萃取表现出2.23次的优异EL效率提升比,而无需电气短。

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