Department of Materials Science and Engineering, Korea University, Seoul 02841, Republic of Korea.
Nanoscale. 2018 Oct 4;10(38):18415-18422. doi: 10.1039/c8nr05212c.
In this work, we introduce a low cost, room-temperature and atmospheric pressure based chemical method to produce highly transparent, conductive, and flexible nano-mesh structured electrodes using Ag nanocrystals (NCs). Sequential treatments of ligand exchange and reduction processes were developed to engineer the optoelectronic properties of Ag NC thin films. Combinatorial analysis indicates that the origin of the relatively low conductivity comes from the non-metallic compounds that are introduced during ligand exchange. The reduction process successfully removed these non-metallic compounds, yielding structurally uniform, optically more transparent, dispersive, and electrically more conductive thin films. We optimized the design of Ag NC thin film mesh structures, and achieved low sheet resistance (9.12 Ω □-1), high optical transmittance (94.7%), and the highest figure of merit (FOM) of 6.37 × 10-2. Solution processed flexible transparent heaters, touch pads, and wearable sensors are demonstrated, emphasizing the potential applications of Ag NC transparent electrodes in multifunctional sensors and devices.
在这项工作中,我们介绍了一种低成本、室温、常压的化学方法,使用银纳米晶体 (NCs) 制备高透明、导电、灵活的纳米网结构电极。我们开发了配体交换和还原过程的顺序处理,以设计 Ag NC 薄膜的光电性能。组合分析表明,相对低电导率的起源来自于配体交换过程中引入的非金属化合物。还原过程成功地去除了这些非金属化合物,得到了结构均匀、光学更透明、分散性更好、导电性更好的薄膜。我们优化了 Ag NC 薄膜网格结构的设计,实现了低方阻 (9.12 Ω □-1)、高光透过率 (94.7%) 和最高的品质因数 (FOM) 为 6.37×10-2。我们展示了溶液处理的柔性透明加热器、触摸板和可穿戴传感器,强调了 Ag NC 透明电极在多功能传感器和器件中的潜在应用。