Vu Chi Cuong, Nguyen Thanh Tai, Kim Sangun, Kim Jooyong
Department of Organic Materials and Fibers Engineering, Soongsil University, Seoul 156-743, Korea.
Materials (Basel). 2021 Apr 5;14(7):1791. doi: 10.3390/ma14071791.
Health monitoring sensors that are attached to clothing are a new trend of the times, especially stretchable sensors for human motion measurements or biological markers. However, price, durability, and performance always are major problems to be addressed and three-dimensional (3D) printing combined with conductive flexible materials (thermoplastic polyurethane) can be an optimal solution. Herein, we evaluate the effects of 3D printing-line directions (45°, 90°, 180°) on the sensor performances. Using fused filament fabrication (FDM) technology, the sensors are created with different print styles for specific purposes. We also discuss some main issues of the stretch sensors from Carbon Nanotube/Thermoplastic Polyurethane (CNT/TPU) and FDM. Our sensor achieves outstanding stability (10,000 cycles) and reliability, which are verified through repeated measurements. Its capability is demonstrated in a real application when detecting finger motion by a sensor-integrated into gloves. This paper is expected to bring contribution to the development of flexible conductive materials-based on 3D printing.
附着在衣物上的健康监测传感器是当下的一种新趋势,尤其是用于人体运动测量或生物标志物检测的可拉伸传感器。然而,价格、耐用性和性能一直是需要解决的主要问题,而三维(3D)打印与导电柔性材料(热塑性聚氨酯)相结合可能是一个最佳解决方案。在此,我们评估3D打印线条方向(45°、90°、180°)对传感器性能的影响。使用熔融沉积成型(FDM)技术,针对特定目的以不同的打印样式制作传感器。我们还讨论了基于碳纳米管/热塑性聚氨酯(CNT/TPU)和FDM的拉伸传感器的一些主要问题。我们的传感器具有出色的稳定性(10000次循环)和可靠性,这通过重复测量得到了验证。当集成在手套中的传感器用于检测手指运动时,其实用性在实际应用中得到了证明。本文有望为基于3D打印的柔性导电材料的发展做出贡献。