Chung King Yan, Xu Bingang, Tan Di, Yang Qingjun, Li Zihua, Fu Hong
Nanotechnology Center, School of Fashion and Textiles, The Hong Kong Polytechnic University, Hong Kong, 999077, People's Republic of China.
Department of Mathematics and Information Technology, The Education University of Hong Kong, Hong Kong, People's Republic of China.
Nanomicro Lett. 2024 Mar 11;16(1):149. doi: 10.1007/s40820-024-01362-z.
Achieving flexible electronics with comfort and durability comparable to traditional textiles is one of the ultimate pursuits of smart wearables. Ink printing is desirable for e-textile development using a simple and inexpensive process. However, fabricating high-performance atop textiles with good dispersity, stability, biocompatibility, and wearability for high-resolution, large-scale manufacturing, and practical applications has remained challenging. Here, water-based multi-walled carbon nanotubes (MWCNTs)-decorated liquid metal (LM) inks are proposed with carbonaceous gallium-indium micro-nanostructure. With the assistance of biopolymers, the sodium alginate-encapsulated LM droplets contain high carboxyl groups which non-covalently crosslink with silk sericin-mediated MWCNTs. E-textile can be prepared subsequently via printing technique and natural waterproof triboelectric coating, enabling good flexibility, hydrophilicity, breathability, wearability, biocompatibility, conductivity, stability, and excellent versatility, without any artificial chemicals. The obtained e-textile can be used in various applications with designable patterns and circuits. Multi-sensing applications of recognizing complex human motions, breathing, phonation, and pressure distribution are demonstrated with repeatable and reliable signals. Self-powered and energy-harvesting capabilities are also presented by driving electronic devices and lighting LEDs. As proof of concept, this work provides new opportunities in a scalable and sustainable way to develop novel wearable electronics and smart clothing for future commercial applications.
实现具有与传统纺织品相当的舒适性和耐用性的柔性电子产品是智能可穿戴设备的最终追求之一。油墨印刷因其工艺简单且成本低廉而适用于电子纺织品的开发。然而,在纺织品上制造具有良好分散性、稳定性、生物相容性和可穿戴性的高性能产品,以用于高分辨率、大规模制造和实际应用,仍然具有挑战性。在此,提出了一种具有碳质镓铟微纳米结构的水基多壁碳纳米管(MWCNT)修饰液态金属(LM)油墨。在生物聚合物的辅助下,海藻酸钠包裹的LM液滴含有高羧基,这些羧基与丝胶介导的MWCNT非共价交联。随后可通过印刷技术和天然防水摩擦电涂层制备电子纺织品,使其具有良好的柔韧性、亲水性、透气性、可穿戴性、生物相容性、导电性、稳定性和出色的通用性,且无需任何人工化学品。所获得的电子纺织品可用于各种具有可设计图案和电路的应用中。通过可重复且可靠的信号展示了识别复杂人体运动、呼吸、发声和压力分布的多传感应用。通过驱动电子设备和点亮发光二极管,还展示了自供电和能量收集能力。作为概念验证,这项工作以可扩展和可持续的方式为开发新型可穿戴电子产品和智能服装以用于未来商业应用提供了新机会。