Laboratory of Photonic Materials and Fibre Devices (FIMAP), Institute of Materials, Ecole Polytechnique Fédérale de Lausanne (EPFL), 1015, Lausanne, Switzerland.
School of Electrical and Electronic Engineering, Nanyang Technological University, Singapore, 639798, Singapore.
Adv Mater. 2019 Jan;31(1):e1802348. doi: 10.1002/adma.201802348. Epub 2018 Sep 11.
The ability to integrate complex electronic and optoelectronic functionalities within soft and thin fibers is one of today's key advanced manufacturing challenges. Multifunctional and connected fiber devices will be at the heart of the development of smart textiles and wearable devices. These devices also offer novel opportunities for surgical probes and tools, robotics and prostheses, communication systems, and portable energy harvesters. Among the various fiber-processing methods, the preform-to-fiber thermal drawing technique is a very promising process that is used to fabricate multimaterial fibers with complex architectures at micro- and nanoscale feature sizes. Recently, a series of scientific and technological breakthroughs have significantly advanced the field of multimaterial fibers, allowing a wider range of functionalities, better performance, and novel applications. Here, these breakthroughs, in the fundamental understanding of the fluid dynamics, rheology, and tailoring of materials microstructures at play in the thermal drawing process, are presented and critically discussed. The impact of these advances on the research landscape in this field and how they offer significant new opportunities for this rapidly growing scientific and technological platform are also discussed.
将复杂的电子和光电子功能集成到柔软、超薄纤维内是当今先进制造的关键挑战之一。多功能和互联纤维器件将是智能纺织品和可穿戴设备发展的核心。这些器件还为手术探头和工具、机器人和假肢、通信系统以及便携式能量收集器提供了新的机会。在各种纤维加工方法中,预制件到纤维的热拉伸技术是一种非常有前途的工艺,可用于制造具有复杂结构的多材料纤维,其微观和纳米尺度的特征尺寸。最近,一系列科学和技术突破极大地推动了多材料纤维领域的发展,使其具有更广泛的功能、更好的性能和新的应用。在这里,介绍并批判性地讨论了在热拉伸过程中发挥作用的流体动力学、流变学以及材料微观结构定制方面的基本理解方面的这些突破。还讨论了这些进展对该领域研究格局的影响,以及它们如何为这个快速发展的科学技术平台提供重要的新机会。