用于柔性oled的喷墨印刷银电极的定性雾霾测量指南

Felix Hermerschmidt, Michael Hengge, V. Schröder, Paul Hänsch, K. Livanov, N. Zamoshchik, E. List‐Kratochvil
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引用次数: 1

摘要

寻找光电器件中常用的氧化铟锡(ITO)的替代透明电极,导致了基于喷墨打印的解决方案。作为一种增材制造技术,喷墨打印只允许在必要的地方放置液滴,与其他方法(如旋转涂层)相比,喷墨打印减少了原材料的浪费。因此,可以对功能材料进行涂层和结构处理,而无需对基板进行掩模或平版印刷预图图化。为此,我们利用无颗粒银墨水通过喷墨打印生产透明电极。印刷后,银离子被氩等离子体还原成金属银。该工艺在低温(约40 - 50°C)下进行,使其适合与通常对温度敏感的柔性基板一起使用。印刷银层具有良好的导电性和透光性,在金属化过程中形成并保持了晶粒结构。这种结构形成了一个自组织的纳米大小的网格,其结构允许光通过。由于其纳米结构的性质,采用简单的实验装置,基于光源照射电极并分析投影图案的大小,研究了电极的雾度。这种定性评估可以是电极质量的有用指示,我们提供了如何复制此设置的详细信息。最终电极在溶液处理的oled中实现,与基于ito的参考器件相比,显示出明亮的亮度和整体低雾度。
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A guide to qualitative haze measurements demonstrated on inkjet-printed silver electrodes for flexible OLEDs
The search for alternative transparent electrodes to the commonly used indium tin oxide (ITO) in optoelectronic devices has led to solution-based approaches based on inkjet printing. As an additive manufacturing technique that allows drops to be positioned only where necessary, inkjet printing shows reduced waste of starting material compared to other methods such as spin coating. As a result, functional materials can be both coated and structured without the need for masks or lithographic pre-patterning of the substrate. For this contribution, we utilized a particle-free silver ink to produce a transparent electrode by inkjet printing. After printing, the silver ions were reduced to metallic silver by an argon plasma. The process takes place at low temperatures (ca. 40 – 50°C), making it suitable for use with flexible substrates, which are often temperature-sensitive. The printed silver layers show good electrical conductivity and optical transmittance, with a crystalline grain structure being formed and maintained during the metallization process. This structure forms a self-organized nanometer-size grid, whose structure allows light to pass through. Due to its nano-structured property, the haze of the electrode was investigated using a simple experimental setup based on a light source shining through the electrode and analyzing the size of the projected pattern. Such qualitative assessment can be a useful indication of the quality of the electrode and we provide details on how to replicate this setup. The final electrodes were implemented in solution-processed OLEDs, which showed bright luminance and overall low haze compared to ITO-based reference devices.
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