Flexible Printed Electronics Technology Center, Harbin Institute of Technology, Shenzhen, 518055, People's Republic of China. State Key Laboratory of Advanced Welding and Joining, Harbin Institute of Technology, Harbin, 150001, People's Republic of China. School of Materials Science and Engineering, Harbin Institute of Technology, Shenzhen, 518055, People's Republic of China.
Nanotechnology. 2019 May 3;30(18):185501. doi: 10.1088/1361-6528/ab013b. Epub 2019 Jan 23.
Patterned circuits on highly stretchable conductive films are critical in the practical application of next-generation flexible and wearable devices. Currently, most patterned circuits do not exhibit highly stretchable properties, and a lithography process in vacuum is required. In this study, silver nanoparticles (AgNPs) and liquid polydimethylsiloxane (PDMS) are mixed together to form liquid conductive adhesives (CAs). Various stretchable patterned circuits are prepared using this CA to achieve all required functions. Six basic patterns, including rhombus, straight lines, serpentine, triangle, ellipses, and fold line, are studied for their stretchable and electrical properties. The film is found to maintain excellent conductivity after withstanding tensile strain of up to 320% and more than 10 000 stretching-releasing cycles of 0%-150%. More than 86% of visible lights can be penetrated through the film due to the transparent substrates. Functional and wearable devices are manufactured, and devices fabricated from rhombus-pattern circuits are found to exhibit stable electrical conductivity when subjected to very high tensile strains. According to the sensitivity of the straight-line patterned circuit to strain, a repeatable use sensitive strain sensor is studied. Also, two types of artificial electrical skin are demonstrated.
高度可拉伸导电薄膜上的图案化电路对于下一代柔性和可穿戴设备的实际应用至关重要。目前,大多数图案化电路不具有高可拉伸性,并且需要在真空中进行光刻工艺。在这项研究中,将银纳米粒子(AgNPs)和液态聚二甲基硅氧烷(PDMS)混合在一起形成液态导电胶(CA)。使用这种 CA 制备了各种可拉伸的图案化电路,以实现所有必需的功能。研究了六种基本图案,包括菱形、直线、蛇形、三角形、椭圆形和折线,以研究其可拉伸性和导电性。该薄膜在承受高达 320%的拉伸应变和超过 10000 次 0%-150%的拉伸-释放循环后仍保持优异的导电性。由于透明基底,超过 86%的可见光可以穿透薄膜。制造了功能性和可穿戴设备,并且发现菱形图案电路制成的设备在受到非常高的拉伸应变时表现出稳定的导电性。根据直线图案化电路对应变的灵敏度,研究了一种可重复使用的灵敏应变传感器。此外,还展示了两种类型的人工电子皮肤。