Casali Institute of Applied Chemistry, Institute of Chemistry.
ACS Nano. 2009 Nov 24;3(11):3537-42. doi: 10.1021/nn901239z.
We report here a concept for utilization of the "coffee ring effect" and inkjet printing to obtain transparent conductive patterns, which can replace the widely used transparent conductive oxides, such as ITO. The transparent conductive coating is achieved by forming a 2-D array of interconnected metallic rings. The rim of the individual rings is less than 10 microm in width and less than 300 nm in height, surrounding a "hole" with a diameter of about 150 microm; therefore the whole array of the interconnected rings is almost invisible to the naked eye. The rims of the rings are composed of self-assembled, closely packed silver nanoparticles, which make the individual rings and the resulting array electrically conductive. The resulting arrays of rings have a transparency of 95%; resistivity of 0.5 cm(2) was 4 +/- 0.5 Omega/, which is better than conventional ITO transparent thin films. The silver rings and arrays are fabricated by a very simple, low cost process, based on inkjet printing of a dispersion of 0.5 wt % silver nanoparticles (approximately 20 nm diameter) on plastic substrates. The performance of this transparent conductive coating was demonstrated by using it as an electrode for a plastic electroluminescent device, demonstrating the applicability of this concept in plastics electronics. It is expected that such transparent conductive coatings can be used in a wide range of applications such as displays (LCD, plasma, touch screens, e-paper), lighting devices (electroluminescence, OLED), and solar cells.
我们在此报告了一种利用“咖啡环效应”和喷墨打印来获得透明导电图案的概念,这种图案可以替代广泛使用的透明导电氧化物,如 ITO。透明导电涂层是通过形成二维互连的金属环阵列来实现的。单个环的边缘宽度小于 10 微米,高度小于 300 纳米,围绕着一个直径约为 150 微米的“孔”;因此,整个互连环阵列几乎肉眼看不见。环的边缘由自组装的、紧密堆积的银纳米粒子组成,使单个环和由此产生的阵列具有导电性。所得到的环阵列的透光率为 95%;电阻率为 0.5 cm(2)时为 4 +/- 0.5 Omega/,优于传统的 ITO 透明薄膜。银环和阵列是通过一种非常简单、低成本的工艺制造的,该工艺基于在塑料基板上喷墨打印 0.5wt%的银纳米粒子(约 20nm 直径)分散体。这种透明导电涂层的性能通过将其用作塑料电致发光器件的电极来证明,展示了这一概念在塑料电子学中的适用性。预计这种透明导电涂层可以在各种应用中使用,如显示器(LCD、等离子体、触摸屏、电子纸)、照明设备(电致发光、OLED)和太阳能电池。