Kong Xiangyi, Li Hejian, Wang Jianping, Wang Yangyang, Zhang Liang, Gong Min, Lin Xiang, Wang Dongrui
School of Chemistry and Biological Engineering, University of Science and Technology Beijing, Beijing 100083, China.
ACS Appl Mater Interfaces. 2023 Feb 22;15(7):9906-9915. doi: 10.1021/acsami.2c22885. Epub 2023 Feb 10.
Direct writing of one-dimensional nanomaterials with large aspect ratios into customized, highly conductive, and high-resolution patterns is a challenging task. In this work, thin silver nanowires (AgNWs) with a length-to-diameter ratio of 730 are employed as a representative example to demonstrate a potent direct ink writing (DIW) strategy, in which aqueous inks using a natural polymer, sodium alginate, as the thickening agent can be easily patterned with arbitrary geometries and controllable structural features on a variety of planar substrates. With the aid of a quick spray-and-dry postprinting treatment at room temperature, the electrical conductivity and substrate adhesion of the written AgNWs-patterns improve simultaneously. This simple, environment benign, and low-temperature DIW strategy is effective for depositing AgNWs into patterns that are high-resolution (with line width down to 50 μm), highly conductive (up to 1.26 × 10 S/cm), and mechanically robust and have a large alignment order of NWs, regardless of the substrate's hardness, smoothness, and hydrophilicity. Soft electroadhesion grippers utilizing as-manufactured interdigitated AgNWs-electrodes exhibit an increased shear adhesion force of up to 15.5 kPa at a driving voltage of 3 kV, indicating the strategy is very promising for the decentralized and customized manufacturing of soft electrodes for future soft electronics and robotics.
将具有大长径比的一维纳米材料直接写入定制的、高导电性和高分辨率图案是一项具有挑战性的任务。在这项工作中,以长度与直径比为730的细银纳米线(AgNWs)作为代表性示例,展示一种有效的直接墨水书写(DIW)策略,其中使用天然聚合物海藻酸钠作为增稠剂的水性墨水可以很容易地在各种平面基板上以任意几何形状和可控结构特征进行图案化。借助室温下快速的喷雾干燥后印刷处理,所书写的AgNWs图案的电导率和与基板的附着力同时提高。这种简单、环境友好且低温的DIW策略可有效地将AgNWs沉积成高分辨率(线宽低至50μm)、高导电性(高达1.26×10 S/cm)、机械坚固且纳米线排列有序的图案,而与基板的硬度、光滑度和亲水性无关。利用按原样制造的叉指式AgNWs电极的软电粘附夹具在3 kV驱动电压下表现出高达15.5 kPa的增加剪切粘附力,表明该策略对于未来软电子和机器人技术中软电极的分散式定制制造非常有前景。