School of Material Science and Engineering, Georgia Institute of Technology , Atlanta, Georgia 30332-0245, United States.
College of Textiles, Key Laboratory of High Performance Fibers and Products, Ministry of Education, Donghua University , Shanghai 201020, People's Republic of China.
ACS Nano. 2017 Sep 26;11(9):9490-9499. doi: 10.1021/acsnano.7b05317. Epub 2017 Sep 15.
Rapid advancements in stretchable and multifunctional wearable electronics impose a challenge on corresponding power devices that they should have comparable portability and stretchability. Here, we report a highly stretchable and washable all-yarn-based self-charging knitting power textile that enables both biomechanical energy harvesting and simultaneously energy storing by hybridizing triboelectrical nanogenerator (TENG) and supercapacitor (SC) into one fabric. With the weft-knitting technique, the power textile is qualified with high elasticity, flexibility, and stretchability, which can adapt to complex mechanical deformations. The knitting TENG fabric is able to generate electric energy with a maximum instantaneous peak power density of ∼85 mW·m and light up at least 124 light-emitting diodes. The all-solid-state symmetrical yarn SC exhibits lightweight, good capacitance, high flexibility, and excellent mechanical and long-term stability, which is suitable for wearable energy storage devices. The assembled knitting power textile is capable of sustainably driving wearable electronics (for example, a calculator or temperature-humidity meter) with energy converted from human motions. Our work provides more opportunities for stretchable multifunctional power sources and potential applications in wearable electronics.
可拉伸和多功能可穿戴电子产品的快速发展对相应的电力设备提出了挑战,要求它们具有相当的便携性和可拉伸性。在这里,我们报告了一种高度可拉伸和可水洗的全纱线自充电针织电源纺织品,它通过将摩擦电纳米发电机(TENG)和超级电容器(SC)混合到一个织物中,实现了生物力学能量收集和同时能量存储。通过经编技术,该电源纺织品具有高弹性、灵活性和可拉伸性,能够适应复杂的机械变形。针织 TENG 织物能够产生最大瞬时峰值功率密度约为 85 mW·m 的电能,并点亮至少 124 个发光二极管。全固态对称纱线 SC 具有重量轻、电容好、柔韧性高、机械和长期稳定性优异等特点,适合用于可穿戴储能设备。组装好的针织电源纺织品能够利用人体运动转化的能量可持续地驱动可穿戴电子设备(例如计算器或温湿度计)。我们的工作为可拉伸多功能电源提供了更多机会,并为可穿戴电子设备的潜在应用提供了可能。