Surface Technology R&D Group, Korea Institute of Industrial Technology (KITECH) , Incheon 406-840, Korea.
Department of Nano Manufacturing Technology, Korea Institute of Machinery and Materials (KIMM) , Daejeon 305-343, Korea.
ACS Appl Mater Interfaces. 2015 Nov 18;7(45):25171-9. doi: 10.1021/acsami.5b06631. Epub 2015 Nov 9.
Metal thin film electrodes on flexible polymer substrates are inherently unstable against humidity and mechanical stresses because of their poor adhesion properties. We introduce a novel approach for improving the adhesion characteristics of metal-polymer interface based on the nanostructuring of the polymer substrate by using nanoimprint lithography. The adhesion characteristics of metal-polymer interface were measured by accelerated test, cyclic bending test and double cantilever beam (DCB) test. The interface of Au/Ti dual layer thin film and nanoimprinted PMMA substrate shows over 2.03 and 1.95 times higher adhesion energy (G(c)) than that of Au/Ti dual layer thin film and plane PMMA substrate in air and wet environments, respectively. The adhesion energy between metal thin film and polymer substrate was dramatically improved by the increased surface roughness and mechanical interlocking effect of numerous nanoscale anchors at the edges of nanoimprinted surface, which was verified by both experiment and numerical analysis.
在柔性聚合物衬底上的金属薄膜电极由于其较差的粘附性能,对湿度和机械应力具有固有不稳定性。我们引入了一种新的方法,通过使用纳米压印光刻技术对聚合物衬底进行纳米结构化,从而提高金属-聚合物界面的粘附特性。通过加速试验、循环弯曲试验和双悬臂梁(DCB)试验来测量金属-聚合物界面的粘附特性。Au/Ti 双层薄膜和纳米压印 PMMA 衬底的界面在空气中和湿环境中的粘附能(G(c))分别比 Au/Ti 双层薄膜和平面 PMMA 衬底高 2.03 倍和 1.95 倍。通过增加纳米压印表面边缘的大量纳米级锚的表面粗糙度和机械互锁效应,金属薄膜和聚合物衬底之间的粘附能得到了显著提高,这通过实验和数值分析得到了验证。