Lan Chuntao, Guo Min, Li Chenglong, Qiu Yiping, Ma Ying, Sun Junqi
Key Laboratory of Textile Science & Technology of Ministry of Education, College of Textiles , Donghua University , Shanghai 201620 , P. R. China.
Innovation Center for Textile Science and Technology , Donghua University , Shanghai 200051 , P. R. China.
ACS Appl Mater Interfaces. 2020 Feb 12;12(6):7477-7485. doi: 10.1021/acsami.9b21698. Epub 2020 Jan 29.
Conductive coatings show great promise for next-generation electromagnetic interference (EMI) shielding challenges on textile; however, their stringent requirements for electrical conductivity are difficult to meet by conventional approaches of increasing the loading and homogeneity of conductive nanofillers. Here, the axial alignment of carbon nanotubes (CNTs) on fibers that were obtained by spontaneous capillary-driven self-assembly is shown on commercial cotton fabrics, and its great potential for EMI shielding is demonstrated. The aligned CNTs structurally optimize the conductive network on fabrics and yield an 81-fold increase in electrical conductivity per unit of CNT, compared with the disordered CNT microstructure. The high-efficiency electrical conductivity allows a several-micron-thick coating on insulating fabrics to endow an EMI shielding effectiveness of 21.5 dB in the X band and 20.8 dB in the Ku band, which meets the standard shielding requirement in commercial applications. It is among the minimum reported thicknesses for conductive nanocomposite coatings to date. Moreover, the coated fabrics with aligned CNTs possess a desirable stability upon bending, scratching, stripping, and even washing, which is attributed to the dense CNT packing in the aligned microarchitecture. This work presents the anisotropic structure on large areas by self-assembly, offering new opportunities for next-generation portable and wearable electronic devices.
导电涂层在应对下一代纺织品电磁干扰(EMI)屏蔽挑战方面展现出巨大潜力;然而,通过增加导电纳米填料的负载量和均匀性的传统方法难以满足其对电导率的严格要求。在此,通过自发毛细管驱动自组装在商业棉织物上实现了碳纳米管(CNT)在纤维上的轴向排列,并展示了其在EMI屏蔽方面的巨大潜力。与无序的CNT微观结构相比,排列的CNT在结构上优化了织物上的导电网络,使每单位CNT的电导率提高了81倍。这种高效的电导率使得在绝缘织物上几微米厚的涂层在X波段具有21.5 dB的EMI屏蔽效能,在Ku波段具有20.8 dB的EMI屏蔽效能,满足了商业应用中的标准屏蔽要求。这是迄今为止报道的导电纳米复合涂层的最小厚度之一。此外,具有排列CNT的涂层织物在弯曲、刮擦、剥离甚至洗涤时都具有理想的稳定性,这归因于排列微结构中CNT的紧密堆积。这项工作通过自组装在大面积上呈现出各向异性结构,为下一代便携式和可穿戴电子设备提供了新机遇。