Profile improvement of blade coated circuits by the capillary force originating from the hydrophobic sidewalls

IF 2.9 4区 工程技术 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
Tang Cheng, Rui Liu, Shanyou Zhu, Subin Jiang, 克時 清水, Jian Lin, Chang‐Qi Ma
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引用次数: 1

Abstract

Abstract Restricting the diffusion of conductive inks plays a key role in printed electronics application. Micro-channels with different sidewall surface energies, which can be approximated as a capillary, are fabricated to restrict the blade-coated ink diffusion using both of the gravitational effect and the capillary force. The coffee ring effect of aqueous silver ink is inhibited by the capillary force when the hydrophobic sidewalls distance is no more than 50 μ m in this paper. As a result, the conductive lines with improved cross-sectional profiles are obtained by this method, with the typical resistivity more than 10 8 times lower than the measured results with hydrophilic sidewalls. The capillary force was also found to lose its effect when the width is larger enough, which needs surfactant addition to improve the silver film property. I–V curves of the original aqueous ink and the ink improved by traditional methods shows that the profile improvement by the hydrophobic sidewall can be used with other ink improving methods cooperatively. These studies open up the possibility of improving the printed conductive patterns by this method as an auxiliary tool used together with the traditional methods reported before.
疏水侧壁毛细力对叶片涂覆电路外形的改善
限制导电油墨的扩散在印刷电子应用中起着关键作用。利用重力效应和毛细力,制备了具有不同侧壁表面能的微通道,将其近似为毛细,以限制油墨的扩散。当疏水边壁距离不大于50 μ m时,毛细力抑制了银水性油墨的咖啡环效应。结果表明,该方法得到了具有改进的截面线,其典型电阻率比具有亲水侧壁的测量结果低10 ~ 8倍。当宽度足够大时,毛细力也失去了作用,需要添加表面活性剂来改善银膜的性能。原始水性油墨和传统方法改进油墨的I-V曲线表明,疏水侧壁的轮廓改善可以与其他油墨改进方法协同使用。这些研究为将该方法作为辅助工具与之前报道的传统方法一起使用,改善印刷导电图案提供了可能性。
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来源期刊
Flexible and Printed Electronics
Flexible and Printed Electronics MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
4.80
自引率
9.70%
发文量
101
期刊介绍: Flexible and Printed Electronics is a multidisciplinary journal publishing cutting edge research articles on electronics that can be either flexible, plastic, stretchable, conformable or printed. Research related to electronic materials, manufacturing techniques, components or systems which meets any one (or more) of the above criteria is suitable for publication in the journal. Subjects included in the journal range from flexible materials and printing techniques, design or modelling of electrical systems and components, advanced fabrication methods and bioelectronics, to the properties of devices and end user applications.
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