Dana Mitra, Kalyan Yoti Mitra, Georg Buchecker, Alexander Görk, Maxim Mousto, Thomas Franzl, Ralf Zichner
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For each ink, as well as for the two laser optics, a suitable laser parameter set has been found, where a conductivity without any damage to the substrate or silver layer could be achieved. In doing so, the margin of the laser speed for both optics is ranging in between 50 mm/s and 100 mm/s, which is compatible with common inkjet printing speeds and facilitates an in-line laser sintering approach. Considering the laser power, the typical parameter range for the spot laser lays in between 10 W and 50 W, whereas for the line optics the full laser power of 200 W had to be applied. One of the nanoparticle silver inks exhibits, especially for the line laser optic, a conductivity of up to 2.22 × 10<sup>7</sup> S‧m<sup>-1</sup>, corresponding to 36% of bulk silver within a few seconds of sintering duration. Both laser sintering approaches together present a remarkable facility to use the laser either as a digital tool for sintering of defined areas by means of a spot beam or to efficiently sinter larger areas by means of a line beam. 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引用次数: 0
摘要
我们详细分析了在柔性聚合物薄膜上喷墨打印纳米颗粒和金属有机分解(MOD)油墨的激光烧结技术。除了采用直径为 3.2 毫米的普通光斑激光光学器件外,还采用了激光束面积为 2 毫米 × 80 毫米的线激光光学器件,这种新颖的方法证明了选择性激光烧结技术在印刷电子产品中实现快速高效烧结方法的巨大潜力。在这项工作中,系统地改变了多种激光参数,主要是激光速度和激光功率,以确定每种油墨的最佳工艺窗口,并将干燥的非导电图案转化为导电和功能性银结构。针对每种油墨以及两种激光光学器件,我们都找到了合适的激光参数集,从而在不损坏基底或银层的情况下实现导电。在此过程中,两种光学器件的激光速度余量在 50 毫米/秒和 100 毫米/秒之间,这与常见的喷墨打印速度相匹配,有利于采用在线激光烧结方法。在激光功率方面,点激光器的典型参数范围在 10 W 到 50 W 之间,而对于线激光器,则必须使用 200 W 的全激光功率。其中一种纳米银墨水的导电率高达 2.22 × 107 S‧m-1,在几秒钟的烧结持续时间内,导电率相当于银块的 36%。这两种激光烧结方法共同提供了一种出色的工具,既可将激光用作数字工具,通过点光束烧结确定的区域,也可通过线光束高效烧结更大的区域。因此,利用激光烧结方法将柔性聚合物基材上的各种喷墨打印银图案转化为功能化导电银层,并应用于印刷电子领域的前景已得到成功验证。
Laser Sintering by Spot and Linear Optics for Inkjet-Printed Thin-Film Conductive Silver Patterns with the Focus on Ink-Sets and Process Parameters.
The implementation of the laser sintering for inkjet-printed nanoparticles and metal organic decomposition (MOD) inks on a flexible polymeric film has been analyzed in detail. A novel approach by implementing, next to a commonly 3.2 mm diameter spot laser optic, a line laser optic with a laser beam area of 2 mm × 80 mm, demonstrates the high potential of selective laser sintering to proceed towards a fast and efficient sintering methodology in printed electronics. In this work, a multiplicity of laser parameters, primary the laser speed and the laser power, have been altered systematically to identify an optimal process window for each ink and to convert the dried and non-conductive patterns into conductive and functional silver structures. For each ink, as well as for the two laser optics, a suitable laser parameter set has been found, where a conductivity without any damage to the substrate or silver layer could be achieved. In doing so, the margin of the laser speed for both optics is ranging in between 50 mm/s and 100 mm/s, which is compatible with common inkjet printing speeds and facilitates an in-line laser sintering approach. Considering the laser power, the typical parameter range for the spot laser lays in between 10 W and 50 W, whereas for the line optics the full laser power of 200 W had to be applied. One of the nanoparticle silver inks exhibits, especially for the line laser optic, a conductivity of up to 2.22 × 107 S‧m-1, corresponding to 36% of bulk silver within a few seconds of sintering duration. Both laser sintering approaches together present a remarkable facility to use the laser either as a digital tool for sintering of defined areas by means of a spot beam or to efficiently sinter larger areas by means of a line beam. With this, the utilization of a laser sintering methodology was successfully validated as a promising approach for converting a variety of inkjet-printed silver patterns on a flexible polymeric substrate into functionalized conductive silver layers for applications in the field of printed electronics.
期刊介绍:
Polymers (ISSN 2073-4360) is an international, open access journal of polymer science. It publishes research papers, short communications and review papers. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. Therefore, there is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced. Polymers provides an interdisciplinary forum for publishing papers which advance the fields of (i) polymerization methods, (ii) theory, simulation, and modeling, (iii) understanding of new physical phenomena, (iv) advances in characterization techniques, and (v) harnessing of self-assembly and biological strategies for producing complex multifunctional structures.