Ye Chao, Dong Shaojun, Ren Jing, Ling Shengjie
School of Physical Science and Technology, ShanghaiTech University, 393 Middle Huaxia Road, Shanghai, 201210, People's Republic of China.
Nanomicro Lett. 2019 Dec 30;12(1):12. doi: 10.1007/s40820-019-0348-z.
Energy harvesting textiles (EHTs) have attracted much attention in wearable electronics and the internet-of-things for real-time mechanical energy harvesting associated with human activities. However, to satisfy practical application requirements, especially the demand for long-term use, it is challenging to construct an energy harvesting textile with elegant trade-off between mechanical and triboelectric performance. In this study, an energy harvesting textile was constructed using natural silk inspired hierarchical structural designs combined with rational material screening; this design strategy provides multiscale opportunities to optimize the mechanical and triboelectric performance of the final textile system. The resulting EHTs with traditional advantages of textiles showed good mechanical properties (tensile strength of 237 ± 13 MPa and toughness of 4.5 ± 0.4 MJ m for single yarns), high power output (3.5 mW m), and excellent structural stability (99% conductivity maintained after 2.3 million multi-type cyclic deformations without severe change in appearance), exhibiting broad application prospects in integrated intelligent clothing, energy harvesting, and human-interactive interfaces.
能量收集纺织品(EHTs)在可穿戴电子产品和物联网领域备受关注,用于收集与人类活动相关的实时机械能。然而,为满足实际应用需求,尤其是长期使用的要求,构建一种在机械性能和摩擦电性能之间实现良好平衡的能量收集纺织品具有挑战性。在本研究中,通过采用受天然蚕丝启发的分层结构设计并结合合理的材料筛选来构建能量收集纺织品;这种设计策略提供了多尺度机会来优化最终纺织品系统的机械性能和摩擦电性能。所得具有纺织品传统优势的EHTs表现出良好的机械性能(单根纱线的拉伸强度为237±13 MPa,韧性为4.5±0.4 MJ m)、高功率输出(3.5 mW m)以及出色的结构稳定性(在230万次多类型循环变形后仍保持99%的导电性,外观无明显变化),在集成智能服装、能量收集和人机交互界面方面展现出广阔的应用前景。