Yang Li, Guo Langang, Wang Zihan, Meng Chuizhou, Wu Jinrong, Chen Xue, Musa Abdullah Abu, Jiang Xiaoqi, Cheng Huanyu
State Key Laboratory of Reliability and Intelligence of Electrical Equipment, School of Health Sciences and Biomedical Engineering, Hebei University of Technology, Tianjin, 300130, China.
State Key Laboratory for Reliability and Intelligence of Electrical Equipment, Hebei Key Laboratory of Smart Sensing and Human-Robot Interaction, School of Mechanical Engineering, Hebei University of Technology, Tianjin, 300401, China.
Adv Sci (Weinh). 2024 Oct;11(39):e2405792. doi: 10.1002/advs.202405792. Epub 2024 Aug 13.
Stretchable triboelectric nanogenerators (TENGs) represent a new class of energy-harvesting devices for powering wearable devices. However, most of them are associated with poor stretchability, low stability, and limited substrate material choices. This work presents the design and demonstration of highly stretchable and stable TENGs based on liquid metalel ectrodes with different phases. The conductive and fluidic properties of eutectic gallium-indium (EGaIn) in the serpentine microfluidic channel ensure the robust performance of the EGaIn-based TENG upon stretching over several hundred percent. The bi-phasic EGaIn (bGaIn) from oxidation lowers surface tension and increases adhesion for printing on diverse substrates with high output performance parameters. The optimization of the electrode shapes in the bGaIn-based TENGs can reduce the device footprint and weight, while enhancing stretchability. The applications of the EGaIn- and bGaIn-based TENG include smart elastic bands for human movement monitoring and smart carpets with integrated data transmission/processing modules for headcount monitoring/control. Combining the concept of origami in the paper-based bGaIn TENG can reduce the device footprint to improve output performance per unit area. The integration of bGaIn-TENG on a self-healing polymer substrate with corrosion resistance against acidic and alkaline solutions further facilitates its use in various challenging and extreme environments.
可拉伸摩擦纳米发电机(TENGs)是一类新型的能量收集装置,用于为可穿戴设备供电。然而,它们中的大多数都存在拉伸性差、稳定性低以及基底材料选择有限的问题。这项工作展示了基于不同相态液态金属电极的高拉伸性和稳定性TENGs的设计与演示。蛇形微流道中共晶镓铟(EGaIn)的导电和流体特性确保了基于EGaIn的TENG在拉伸数百百分比时仍具有稳健的性能。氧化产生的双相EGaIn(bGaIn)降低了表面张力并增加了附着力,从而能够在各种具有高输出性能参数的基底上进行打印。基于bGaIn的TENG中电极形状的优化可以减小器件尺寸和重量,同时提高拉伸性。基于EGaIn和bGaIn的TENG的应用包括用于人体运动监测的智能弹性带以及带有集成数据传输/处理模块用于人数监测/控制的智能地毯。将折纸概念应用于纸质bGaIn TENG可以减小器件尺寸,以提高单位面积的输出性能。将bGaIn-TENG集成在具有耐酸碱性溶液腐蚀性能的自修复聚合物基底上,进一步便于其在各种具有挑战性的极端环境中使用。