Soft Biomedical Devices Lab, Department of Robotics Engineering, Daegu Gyeongbuk Institute of Science and Technology (DGIST), Daegu-si 42988, Republic of Korea.
Laboratory of Biosensors and Bioelectronics, Institute for Biomedical Engineering, ETH Zürich, Zurich 8092, Switzerland.
ACS Appl Mater Interfaces. 2021 Aug 25;13(33):39868-39879. doi: 10.1021/acsami.1c09879. Epub 2021 Aug 12.
Wearable electronic devices have attracted significant attention as important components in several applications. Among various wearable electronic devices, interest in textile electronic devices is increasing because of their high deformability and portability in daily life. To develop textile electronic devices, fiber-based electronic devices should be fundamentally studied. Here, we report a stretchable and sensitive fiber strain sensor fabricated using only harmless materials during an in situ formation process. Despite using a mild and harmless reducing agent instead of typical strong and hazardous reducing agents, the developed fiber strain sensors feature a low initial electrical resistance of 0.9 Ω/cm, a wide strain sensing range (220%), high sensitivity (∼5.8 × 10), negligible hysteresis, and high stability against repeated stretching-releasing deformation (5000 cycles). By applying the fiber sensors to various textiles, we demonstrate that the smart textile system can monitor various gestures in real-time and help users maintain accurate posture during exercise. These results will provide meaningful insights into the development of next-generation wearable applications.
可穿戴电子设备作为许多应用中的重要组成部分引起了极大的关注。在各种可穿戴电子设备中,由于其在日常生活中的高可变形性和便携性,对纺织电子设备的兴趣日益增加。为了开发纺织电子设备,应该从根本上研究纤维基电子设备。在这里,我们报告了一种使用原位形成过程中仅使用无害材料制造的可拉伸和敏感的纤维应变传感器。尽管使用了温和且无害的还原剂而不是典型的强腐蚀性和有害的还原剂,但所开发的纤维应变传感器具有低初始电阻(0.9 Ω/cm)、宽应变传感范围(220%)、高灵敏度(约 5.8×10)、可忽略的滞后以及对重复拉伸-释放变形的高稳定性(5000 次循环)。通过将纤维传感器应用于各种纺织品,我们证明了智能纺织品系统可以实时监测各种手势,并帮助使用者在运动过程中保持准确的姿势。这些结果将为下一代可穿戴应用的发展提供有意义的见解。