High performance silver nanowire based transparent electrodes reinforced by conductive polymer adhesive

Qisen Xie, Cheng Yang, Zhexu Zhang, Ruobing Zhang
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引用次数: 3

Abstract

Transparent conducting electrodes (TCEs) are an essential component for modern opto-electronic devices such as solar cells, organic light emitting diodes (OLEDs), liquid crystal displays (LCDs), and touch screen panels. However, traditional indium tin oxide (ITO) cannot meet the demand for the next generation highly flexible TCEs, and thus many novel alternative materials and technologies are blooming, such as super-aligned carbon nanotube, graphenes, conducting polymer and metal nanowire and so on. Among them, silver nanowires (Ag NWs) have been considered as one of the most promising technologies for TCEs, featured with superior electrical and optical properties. However, there are still two major challenges for Ag NWs-based TCEs technology to overcome. One is the poor mechanical interconnection between the Ag NWs conducting networks and transparent substrate, the other is the high contact resistance of the junctions among Ag NWs. Here we report a novel two-step electrostatic spraying process to fabricate Ag NWs TCEs composite with selectively coated conductive polymer, i.e. poly 3,4-ethylenedioxythiophene: polystyrenesulfonate (PEDOT:PSS). Additionally, we applied plasma treatment to the materials between two-step electrostatic spraying process, which rendered sintering of junctions between the Ag NWs at room temperature, and thus increasing the conductivity of the TCEs by at least three orders of magnitude. Results showed that by adjusting the electrostatic spraying process parameters, selective deposition can be achieved, i.e. the conductive polymer could tightly bound to the Ag NWs network. As compared to an even distribution of the coating layer in the whole area, selective coating rendered the negligible loss of transmittance (0.2% at most) and excellent adhesion to the substrate. Moreover, the composited TCEs exhibited 85.3% mean optical transmittance and 35.8 Ω/sq sheet resistance. Based on our results, we believe that this technology can be used for roll-to-roll preparation of silver nanowires (Ag NWs)-based TCEs.
导电聚合物粘合剂增强的高性能银纳米线透明电极
透明导电电极(TCEs)是太阳能电池、有机发光二极管(oled)、液晶显示器(lcd)和触摸屏面板等现代光电器件的重要组成部分。然而,传统的氧化铟锡(ITO)已不能满足下一代高柔性TCEs的需求,因此许多新的替代材料和技术应运而生,如超排列碳纳米管、石墨烯、导电聚合物和金属纳米线等。其中,银纳米线具有优异的电学和光学性能,被认为是最有前途的tce技术之一。然而,基于Ag nws的TCEs技术仍有两个主要挑战需要克服。一是银纳米墙导电网络与透明衬底之间的机械互连性差,二是银纳米墙之间结的接触电阻高。本文报道了一种新的两步静电喷涂工艺,以选择性涂覆导电聚合物,即聚3,4-乙烯二氧噻吩-聚苯磺酸盐(PEDOT:PSS)制备银NWs TCEs复合材料。此外,我们在两步静电喷涂过程之间对材料进行了等离子体处理,在室温下实现了银NWs之间结的烧结,从而将tce的导电性提高了至少三个数量级。结果表明,通过调整静电喷涂工艺参数,可以实现选择性沉积,即导电聚合物可以紧密结合在Ag NWs网络上。与涂层均匀分布在整个区域相比,选择性涂层的透过率损失可以忽略不计(最多0.2%),并且与基材的附着力很好。此外,复合TCEs的平均透过率为85.3%,电阻为35.8 Ω/sq sheet。基于我们的研究结果,我们相信该技术可以用于基于银纳米线(Ag NWs)的tce的卷对卷制备。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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