State Key Laboratory of Molecular Engineering of Polymers, Department of Macromolecular Science, Institute of Fiber Materials and Devices, and Laboratory of Advanced Materials, Fudan University, Shanghai, China.
The Institute of AI and Robotics, Fudan University, Shanghai, China.
Nat Protoc. 2024 May;19(5):1557-1589. doi: 10.1038/s41596-024-00956-6. Epub 2024 Mar 1.
Mono-dimensional fiber-based electronics can effectively address the growing demand for improved wearable electronic devices because of their exceptional flexibility and stretchability. For practical applications, functional fiber electronic devices need to be integrated into more powerful and versatile systems to execute complex tasks that cannot be completed by single-fiber devices. Existing techniques, such as printing and sintering, reduce the flexibility and cause low connection strength of fiber-based electronic devices because of the high curvature of the fiber. Here, we outline a twisting fabrication process for fiber electrodes, which can be woven into functional threads and integrated within textiles. The design of the twisted thread structure for fiber devices ensures stable interfacing and good flexibility, while the textile structure features easily accessible, interlaced points for efficient circuit connections. Electronic textiles can be customized to act as displays, health monitors and power sources. We detail three main fabrication sections, including the fabrication of the fiber electrodes, their twisting into electronic threads and their assembly into functional textile-based devices. The procedures require ~10 d and are easily reproducible by researchers with expertise in fabricating energy and electronic devices.
基于单纤维的电子设备具有出色的柔韧性和拉伸性,能够有效满足人们对改进型可穿戴电子设备日益增长的需求。对于实际应用,功能纤维电子设备需要集成到更强大和多功能的系统中,以执行单纤维设备无法完成的复杂任务。现有的技术,如印刷和烧结,由于纤维的高曲率,会降低纤维基电子设备的柔韧性,并导致其连接强度较低。在这里,我们概述了一种纤维电极的扭曲制造工艺,该工艺可以编织成功能线,并集成在纺织品中。纤维器件扭曲线结构的设计确保了稳定的接口和良好的柔韧性,而纺织品结构则具有易于访问的交错点,可实现高效的电路连接。电子纺织品可以定制为显示器、健康监测器和电源。我们详细介绍了三个主要的制造部分,包括纤维电极的制造、将其扭曲成电子线以及将其组装成功能性基于纺织品的设备。这些步骤大约需要 10 天时间,并且具有制造能源和电子设备专业知识的研究人员可以轻松复制。