Shi Jiulong, Peng Fei, Shan Tingting, Guo Juan, Gao Chaojun, Zheng Guoqiang
School of Physics, School of Materials Science and Engineering, Zhengzhou University, Zhengzhou, 450001, P. R. China.
Macromol Rapid Commun. 2025 Jan;46(1):e2400616. doi: 10.1002/marc.202400616. Epub 2024 Sep 6.
With the rapid development of information technology (e.g., Internet of Things (IoT) and artificial intelligence (AI)), piezoelectric sensor (i.e., piezoelectric nanogenerator, PENG) receives an increasing number attention in the field of self-powered wearable devices. Taking piezoelectric fiber as an example, it shows promising application for wearable devices owing to its light weight and high flexibility compared with block electronic devices. However, it still remains a challenge to fabricate low-cost and high-performance piezoelectric fiber via a large-scale but efficient method. In this study, via extrusion molding and leaching, a core-sheath piezoelectric sensor is facilely fabricated, whose core and sheath layer are respectively slender steel wire (i.e., electrode) and PVDF microfibrillar bundle (PMB) (i.e., piezoelectric layer). Such piezoelectric sensor shows decent output performance in both pressing (12.3 V) and bending (0.32 V) mode. Meanwhile, it possesses sensitive stress responsiveness when serving for self-powered sensing. Furthermore, such piezoelectric sensors can realize wearable signal transmission and human motion monitoring, showing promising potential for wearable devices in the future. This work proposes a large-scale but efficient method for fabricating high-performance PVDF microfibril based piezoelectric fiber, opening a new pathway to develop self-powered sensors following the concept of polymer "structuring" processing.
随着信息技术(如物联网(IoT)和人工智能(AI))的快速发展,压电传感器(即压电纳米发电机,PENG)在自供电可穿戴设备领域受到越来越多的关注。以压电纤维为例,与块状电子设备相比,由于其重量轻和高柔韧性,它在可穿戴设备中显示出广阔的应用前景。然而,通过大规模且高效的方法制造低成本、高性能的压电纤维仍然是一个挑战。在本研究中,通过挤出成型和浸出工艺,简便地制备了一种核壳结构压电传感器,其核层和壳层分别为细钢丝(即电极)和聚偏氟乙烯微纤维束(PMB)(即压电层)。这种压电传感器在按压(12.3 V)和弯曲(0.32 V)模式下均表现出良好的输出性能。同时,在用作自供电传感时,它具有灵敏的应力响应性。此外,这种压电传感器能够实现可穿戴信号传输和人体运动监测,在未来的可穿戴设备中显示出广阔的应用潜力。这项工作提出了一种大规模且高效的方法来制备基于聚偏氟乙烯微纤维的高性能压电纤维,为遵循聚合物“结构化”加工概念开发自供电传感器开辟了一条新途径。