Graduate School of Convergence Science and Technology, Seoul National University, Seoul, 08826, Republic of Korea.
Department of Chemical Engineering and Department of Energy Systems Research, Ajou University, Suwon, 16499, Republic of Korea.
Small. 2022 Jan;18(3):e2106174. doi: 10.1002/smll.202106174. Epub 2021 Dec 8.
Composites based on carbon nanotubes (CNTs) are promising patternable materials that can be engineered to incorporate the outstanding properties of CNTs into various applications via printing technologies. However, conventional printing methods for CNTs require further improvement to overcome the major drawbacks that limit the patterning resolution and target substrate. Herein, an intaglio contact printing method based on a CNT/paraffin composite is presented for realizing highly precise CNT network patterns without restrictions on the substrate. In this method, the CNT/paraffin composite can be patterned with a high resolution (<10 µm) and neatly transferred onto various substrates with a wide range of surface energies, including human skin. The patterned composite exhibits high durability against structural deformations, and structural damage caused by fatigue accumulation can be cured in a few seconds. In addition, miniaturized sensing and energy-harvesting applications are demonstrated with high performances. The present method facilitates the rapid fabrication of highly precise interdigitated electrodes via one-step printing, enabling high-performance operation and miniaturization of the devices. It is anticipated that these results will not only spur the further development of various applications of CNTs but also contribute to advances in soft lithography methods applicable to many fields of science and engineering.
基于碳纳米管(CNT)的复合材料是一种很有前途的可成型材料,可以通过印刷技术将 CNT 的优异性能工程化到各种应用中。然而,用于 CNT 的传统打印方法需要进一步改进,以克服限制图案分辨率和目标基底的主要缺点。在此,提出了一种基于 CNT/石蜡复合材料的凹版接触印刷方法,用于实现不受基底限制的高度精确的 CNT 网络图案。在该方法中,CNT/石蜡复合材料可以以高分辨率(<10 μm)进行图案化,并整齐地转移到各种具有广泛表面能的基底上,包括人体皮肤。图案化的复合材料具有很高的抗结构变形耐久性,并且由疲劳积累引起的结构损坏可以在几秒钟内得到修复。此外,还展示了具有高性能的小型化传感和能量收集应用。该方法通过一步印刷方便地制造出高度精确的叉指电极,实现了器件的高性能操作和小型化。预计这些结果不仅将促进 CNT 的各种应用的进一步发展,而且将有助于适用于许多科学和工程领域的软光刻方法的进步。