Institute of Organic and Polymeric Materials, National Taipei University of Technology, Taipei, Taiwan.
Nanoscale. 2019 Jan 23;11(4):1520-1530. doi: 10.1039/c8nr08819e.
Silver nanowire (AgNW) networks have attracted considerable attention as transparent electrodes for emerging flexible optoelectronics. However, the transference of such networks onto diverse arbitrary substrates with high conductivity remains a challenge because of the possibility of detaching and sliding occurring at the interface. Therefore, we developed a water-assisted transfer printing method for the fabrication and transfer of an AgNW-polydimethylsiloxane (PDMS) electrode. This innovative approach exhibits a robust ability for thin film transfer onto arbitrary substrates and has highly controlled and nondestructive characteristics. The obtained electrodes exhibited a high ratio of DC conductivity to optical conductivity of 200, a low sheet resistance of 9 Ω sq-1 at 82%, tensile strain (0% to 50%), and flexibility (bending radius of less than 2 mm) without significant loss of conductivity compared with devices fabricated through conventional methods. Furthermore, we demonstrated a novel textile-based flexible light-emitting electrochemical cell (PLEC) based on the stretchable AgNW-PDMS electrode and buckling concept, thereby realizing highly stretchable PLECs with excellent performance and mechanical robustness. The luminance intensity of the strained device was optimized to 58 cd m-2 at 7 V under 10% linear strain without damaging the electroluminescence properties. Notably, this effective and practical transfer method provides a way to develop electronic nanowire devices with unique configurations and high performances.
银纳米线 (AgNW) 网络作为新兴的柔性光电透明电极引起了广泛关注。然而,由于界面处可能发生脱离和滑动,将此类网络转移到具有高导电性的各种任意基底上仍然是一个挑战。因此,我们开发了一种水辅助转移印刷方法来制造和转移 AgNW-聚二甲基硅氧烷 (PDMS) 电极。这种创新方法具有将薄膜转移到任意基底上的强大能力,并且具有高度可控和非破坏性的特点。所获得的电极表现出高的直流电导率与光导率比(200)、低的面电阻(82%拉伸应变时为 9 Ω sq-1)、拉伸应变(0%至 50%)和灵活性(弯曲半径小于 2mm),与通过传统方法制造的器件相比,电导率没有明显损失。此外,我们展示了一种基于可拉伸 AgNW-PDMS 电极和屈曲概念的新型基于纺织品的柔性发光电化学电池 (PLEC),从而实现了具有优异性能和机械鲁棒性的高度可拉伸 PLEC。在 10%线性应变下,应变器件的亮度强度优化至 58 cd m-2,在 7V 下,不会损坏电致发光性能。值得注意的是,这种有效且实用的转移方法为开发具有独特配置和高性能的电子纳米线器件提供了一种途径。