Deng Hai-Tao, Wang Zhi-Yong, Wang Yi-Lin, Wen Dan-Liang, Zhang Xiao-Sheng
School of Electronic Science and Engineering, University of Electronic Science and Technology of China, 611731 Chengdu, China.
Microsyst Nanoeng. 2022 Jun 6;8:61. doi: 10.1038/s41378-022-00393-z. eCollection 2022.
Wearable electronics, as essential components of the Internet of Things (IoT), have attracted widespread attention, and the trend is to configure attractive wearable smart microsystems by integrating sensing, powering, and other functions. Herein, we developed an elastic hybrid triboelectric-electromagnetic microenergy harvester (named EHTE) to realize hybrid sensing and microenergy simultaneously. This EHTE is a highly integrated triboelectric nanogenerator (TENG) and electromagnetic nanogenerator (EMG). Based on the triboelectric-electromagnetic hybrid mechanism, an enhanced electrical output of the EHTE was achieved successfully, which demonstrates the feasibility of the EHTE for microelectronics powering. Moreover, with the merits of the EMG, the developed hybrid microenergy harvester integrated both active frequency sensing and passive inductive sensing capabilities. Specifically, the almost linear correlation of the electromagnetic outputs to the frequencies of the external stimulus endowed the proposed EHTE with an outstanding active frequency sensing ability. In addition, due to the unique structural configuration of the EMG (i.e., a conductive permanent magnet (PM), hybrid deformation layer, and flexible printed circuit board (FPCB) coil), an opportunity was provided for the developed EHTE to serve as a passive inductive sensor based on the eddy current effect (i.e., a form of electromagnetic induction). Therefore, the developed EHTE successfully achieved the integration of hybrid sensing (i.e., active frequency sensing and passive inductive sensing) and microenergy (i.e., the combination of electromagnetic effect and triboelectric effect) within a single device, which demonstrates the potential of this newly developed EHTE for wearable electronic applications, especially in applications of compact active microsystems.
可穿戴电子产品作为物联网(IoT)的重要组成部分,已引起广泛关注,其发展趋势是通过集成传感、供电等功能来配置具有吸引力的可穿戴智能微系统。在此,我们开发了一种弹性混合摩擦电 - 电磁微能量收集器(名为EHTE),以同时实现混合传感和微能量收集。这种EHTE是一种高度集成的摩擦纳米发电机(TENG)和电磁纳米发电机(EMG)。基于摩擦电 - 电磁混合机制,成功实现了EHTE增强的电输出,这证明了EHTE用于微电子供电的可行性。此外,凭借EMG的优点,所开发的混合微能量收集器集成了主动频率传感和被动电感传感能力。具体而言,电磁输出与外部刺激频率之间几乎呈线性相关,赋予了所提出的EHTE出色的主动频率传感能力。此外,由于EMG独特的结构配置(即导电永磁体(PM)、混合变形层和柔性印刷电路板(FPCB)线圈),为所开发的EHTE提供了一个基于涡流效应(即电磁感应的一种形式)用作被动电感传感器的机会。因此,所开发的EHTE成功地在单个设备内实现了混合传感(即主动频率传感和被动电感传感)和微能量(即电磁效应和摩擦电效应的结合)的集成,这证明了这种新开发的EHTE在可穿戴电子应用中的潜力,特别是在紧凑型有源微系统的应用中。