Zou Yongjiu, Libanori Alberto, Xu Jing, Nashalian Ardo, Chen Jun
Department of Bioengineering, University of California, Los Angeles, Los Angeles, CA 90095, USA.
Research (Wash D C). 2020 Nov 9;2020:7158953. doi: 10.34133/2020/7158953. eCollection 2020.
The parallel evolution of wearable electronics, artificial intelligence, and fifth-generation wireless technology has created a technological paradigm with the potential to change our lives profoundly. Despite this, addressing limitations linked to continuous, sustainable, and pervasive powering of wearable electronics remains a bottleneck to overcome in order to maximize the exponential benefit that these technologies can bring once synergized. A recent groundbreaking discovery has demonstrated that by using the coupling effect of contact electrification and electrostatic induction, triboelectric nanogenerators (TENGs) can efficiently convert irregular and low-frequency passive biomechanical energy from body movements into electrical energy, providing an infinite and sustainable power source for wearable electronics. A number of human motions have been exploited to properly and efficiently harness this energy potential, including human ambulation. Shoes are an indispensable component of daily wearing and can be leveraged as an excellent platform to exploit such kinetic energy. In this article, the latest representative achievements of TENG-based smart electricity-generating shoes are comprehensively reviewed. We summarize ways in which not only can biomechanical energy be scavenged via ambulatory motion, but also biomonitoring of health parameters via tracking of rhythm and strength of pace can be implemented to aid in theranostic fields. This work provides a systematical review of the rational structural design, practical applications, scenario analysis, and performance evaluation of TENG-based smart shoes for wearable electricity generation. In addition, the perspective for future development of smart electricity-generation shoes as a sustainable and pervasive energy solution towards the upcoming era of the Internet of Things is discussed.
可穿戴电子设备、人工智能和第五代无线技术的并行发展创造了一种有可能深刻改变我们生活的技术范式。尽管如此,要充分发挥这些技术协同作用后所能带来的指数级效益,解决与可穿戴电子设备持续、可持续和普遍供电相关的限制仍是一个有待克服的瓶颈。最近一项开创性的发现表明,通过利用接触起电和静电感应的耦合效应,摩擦纳米发电机(TENGs)可以有效地将人体运动中不规则的低频被动生物机械能转化为电能,为可穿戴电子设备提供无限且可持续的电源。人们已经利用多种人体运动来合理有效地利用这种能量潜力,包括人类行走。鞋子是日常穿着中不可或缺的一部分,可以作为利用这种动能的绝佳平台。在本文中,全面回顾了基于TENG的智能发电鞋的最新代表性成果。我们总结了不仅可以通过行走运动收集生物机械能,还可以通过跟踪步伐的节奏和强度来实现健康参数的生物监测,以辅助治疗诊断领域。这项工作对基于TENG的可穿戴发电智能鞋的合理结构设计、实际应用、场景分析和性能评估进行了系统综述。此外,还讨论了智能发电鞋作为面向即将到来的物联网时代的可持续和普遍能源解决方案的未来发展前景。