Li Zhe, Zheng Qiang, Wang Zhong Lin, Li Zhou
CAS Center for Excellence in Nanoscience, Beijing Key Laboratory of Micro-Nano Energy and Sensor, Beijing Institute of Nanoenergy and Nanosystems, Chinese Academy of Sciences, Beijing 100083, China.
School of Nanoscience and Technology, University of Chinese Academy of Sciences, Beijing 100049, China.
Research (Wash D C). 2020 Mar 10;2020:8710686. doi: 10.34133/2020/8710686. eCollection 2020.
Wearable and implantable electronics (WIEs) are more and more important and attractive to the public, and they have had positive influences on all aspects of our lives. As a bridge between wearable electronics and their surrounding environment and users, sensors are core components of WIEs and determine the implementation of their many functions. Although the existing sensor technology has evolved to a very advanced level with the rapid progress of advanced materials and nanotechnology, most of them still need external power supply, like batteries, which could cause problems that are difficult to track, recycle, and miniaturize, as well as possible environmental pollution and health hazards. In the past decades, based upon piezoelectric, pyroelectric, and triboelectric effect, various kinds of nanogenerators (NGs) were proposed which are capable of responding to a variety of mechanical movements, such as breeze, body drive, muscle stretch, sound/ultrasound, noise, mechanical vibration, and blood flow, and they had been widely used as self-powered sensors and micro-nanoenergy and blue energy harvesters. This review focuses on the applications of self-powered generators as implantable and wearable sensors in health monitoring, biosensor, human-computer interaction, and other fields. The existing problems and future prospects are also discussed.
可穿戴和植入式电子设备(WIEs)对公众来说越来越重要且具有吸引力,并且它们已经对我们生活的各个方面产生了积极影响。作为可穿戴电子设备与其周围环境及用户之间的桥梁,传感器是WIEs的核心组件,决定了其许多功能的实现。尽管随着先进材料和纳米技术的快速发展,现有的传感器技术已经发展到了非常先进的水平,但它们中的大多数仍然需要外部电源,如电池,这可能会导致难以追踪、回收和小型化的问题,以及可能的环境污染和健康危害。在过去几十年中,基于压电、热电和摩擦电效应,人们提出了各种纳米发电机(NGs),它们能够响应各种机械运动,如微风、身体驱动、肌肉拉伸、声音/超声波、噪音、机械振动和血流,并且它们已被广泛用作自供电传感器以及微纳能源和蓝色能源采集器。本文综述聚焦于自供电发电机作为植入式和可穿戴传感器在健康监测、生物传感器、人机交互及其他领域的应用。同时也讨论了现存问题和未来前景。