Univ. Grenoble Alpes, CEA, LITEN, F-38054, Grenoble, France.
Univ. Grenoble Alpes, CNRS, LMGP, F-38000, Grenoble, France.
Small. 2016 Nov;12(44):6052-6075. doi: 10.1002/smll.201602581. Epub 2016 Oct 18.
Transparent electrodes attract intense attention in many technological fields, including optoelectronic devices, transparent film heaters and electromagnetic applications. New generation transparent electrodes are expected to have three main physical properties: high electrical conductivity, high transparency and mechanical flexibility. The most efficient and widely used transparent conducting material is currently indium tin oxide (ITO). However the scarcity of indium associated with ITO's lack of flexibility and the relatively high manufacturing costs have a prompted search into alternative materials. With their outstanding physical properties, metallic nanowire (MNW)-based percolating networks appear to be one of the most promising alternatives to ITO. They also have several other advantages, such as solution-based processing, and are compatible with large area deposition techniques. Estimations of cost of the technology are lower, in particular thanks to the small quantities of nanomaterials needed to reach industrial performance criteria. The present review investigates recent progress on the main applications reported for MNW networks of any sort (silver, copper, gold, core-shell nanowires) and points out some of the most impressive outcomes. Insights into processing MNW into high-performance transparent conducting thin films are also discussed according to each specific application. Finally, strategies for improving both their stability and integration into real devices are presented.
透明电极在许多技术领域引起了强烈关注,包括光电设备、透明薄膜加热器和电磁应用。新一代透明电极需要具备三个主要物理特性:高导电性、高透明度和机械柔韧性。目前最有效和广泛使用的透明导电材料是铟锡氧化物(ITO)。然而,铟的稀缺性以及 ITO 的缺乏柔韧性和相对较高的制造成本促使人们寻找替代材料。基于其出色的物理性能,基于金属纳米线(MNW)的渗滤网络似乎是替代 ITO 的最有前途的材料之一。它们还具有其他一些优点,例如基于溶液的处理方法,并且与大面积沉积技术兼容。该技术的成本估计较低,特别是由于达到工业性能标准所需的纳米材料数量较少。本综述研究了 MNW 网络(银、铜、金、核壳纳米线)的主要应用的最新进展,并指出了一些最令人印象深刻的结果。根据每种特定应用,还讨论了将 MNW 加工成高性能透明导电薄膜的见解。最后,提出了提高其稳定性和集成到实际设备中的策略。