School of Electrical and Electronic Engineering, Nanyang Technological University, Singapore, 639798, Singapore.
CINTRA CNRS/NTU/THALES, UMI3288, Research Techno Plaza, 50 Nanyang Drive, Singapore, 639798, Singapore.
Nat Commun. 2021 Mar 3;12(1):1416. doi: 10.1038/s41467-021-21729-9.
The well-developed preform-to-fiber thermal drawing technique owns the benefit to maintain the cross-section architecture and obtain an individual micro-scale strand of fiber with the extended length up to thousand meters. In this work, we propose and demonstrate a two-step soluble-core fabrication method by combining such an inherently scalable manufacturing method with simple post-draw processing to explore the low viscosity polymer fibers and the potential of soft fiber electronics. As a result, an ultra-stretchable conductive fiber is achieved, which maintains excellent conductivity even under 1900% strain or 1.5 kg load/impact freefalling from 0.8-m height. Moreover, by combining with triboelectric nanogenerator technique, this fiber acts as a self-powered self-adapting multi-dimensional sensor attached on sports gears to monitor sports performance while bearing sudden impacts. Next, owing to its remarkable waterproof and easy packaging properties, this fiber detector can sense different ion movements in various solutions, revealing the promising applications for large-area undersea detection.
预成型纤维热拉伸技术已经非常成熟,其优势在于可以保持纤维的横截面结构,并获得单根延伸长度可达数千米的微观级别的纤维。在这项工作中,我们提出并展示了一种两步可溶性芯丝的制造方法,即将这种具有固有可扩展性的制造方法与简单的后拉伸处理相结合,以探索低粘度聚合物纤维和软纤维电子的潜力。结果,制备得到了一种超拉伸的导电纤维,其在 1900%应变或 1.5kg 负载/从 0.8m 高度自由落体冲击下仍保持着优异的导电性。此外,通过与摩擦纳米发电机技术相结合,这种纤维作为一种自供电自适应多维传感器,可以附着在运动装备上,在承受突然冲击的同时监测运动性能。接下来,由于其出色的防水和易于封装的特性,这种纤维探测器可以检测不同溶液中的不同离子运动,这为大面积水下探测提供了有前景的应用。