Woo Jong Seok, Han Joong Tark, Jung Sunshin, Jang Jeong In, Kim Ho Young, Jeong Hee Jin, Jeong Seung Yol, Baeg Kang-Jun, Lee Geon-Woong
Nano Hybrid Technology Research Center, Korea Electrotechnology Research Institute (KERI), Changwon 642-120, Republic of Korea.
1] Multidimensional Nanomaterials Research Group, Korea Electrotechnology Research Institute (KERI), Changwon 642-120, Republic of Korea [2] Department of Electrical Functionality Material Engineering, University of Science and Technology (UST), Daejon, 305-333, Republic of Korea.
Sci Rep. 2014 Apr 25;4:4804. doi: 10.1038/srep04804.
Modulation of the junction resistance between metallic nanowires is a crucial factor for high performance of the network-structured conducting film. Here, we show that under current flow, silver nanowire (AgNW) network films can be stabilised by minimizing the Joule heating at the NW-NW junction assisted by in-situ interconnection with a small amount (less than 3 wt%) of single-walled carbon nanotubes (SWCNTs). This was achieved by direct deposition of AgNW suspension containing SWCNTs functionalised with quadruple hydrogen bonding moieties excluding dispersant molecules. The electrical stabilisation mechanism of AgNW networks involves the modulation of the electrical transportation pathway by the SWCNTs through the SWCNT-AgNW junctions, which results in a relatively lower junction resistance than the NW-NW junction in the network film. In addition, we propose that good contact and Fermi level matching between AgNWs and modified SWCNTs lead to the modulation of the current pathway. The SWCNT-induced stabilisation of the AgNW networks was also demonstrated by irradiating the film with microwaves. The development of the high-throughput fabrication technology provides a robust and scalable strategy for realizing high-performance flexible transparent conductor films.
金属纳米线之间结电阻的调制是网络结构导电薄膜高性能的关键因素。在此,我们表明在电流流动下,通过在少量(小于3 wt%)单壁碳纳米管(SWCNT)的原位互连辅助下,使纳米线 - 纳米线结处的焦耳热最小化,可以稳定银纳米线(AgNW)网络薄膜。这是通过直接沉积含有用四重氢键部分功能化的SWCNT(不包括分散剂分子)的AgNW悬浮液来实现的。AgNW网络的电稳定机制涉及SWCNT通过SWCNT - AgNW结调制电传输路径,这导致网络薄膜中的结电阻比纳米线 - 纳米线结相对更低。此外,我们提出AgNW与改性SWCNT之间良好的接触和费米能级匹配导致电流路径的调制。通过用微波照射薄膜也证明了SWCNT诱导的AgNW网络的稳定性。高通量制造技术的发展为实现高性能柔性透明导体薄膜提供了一种强大且可扩展的策略。