Li Zhaoyang, Cui Yong, Zhong Junwen
Department of Electromechanical Engineering, Centre for Artificial Intelligence and Robotics, University of Macau, Macau, 999078, China.
Department of Automation Science and Electrical Engineering, Beihang University, Beijing, 100191, China.
Biosens Bioelectron. 2021 Aug 15;186:113290. doi: 10.1016/j.bios.2021.113290. Epub 2021 May 1.
Electromechanical biomonitoring is essential in human health evaluation, diseases prevention and life quality improvement. Nanogenerators (NGs) have demonstrated exceptional performances and versatility in self-powered flexible electronics including piezoelectric and electrostatic sensors. Combined with artificial intelligent (AI), five generation (5G) and internet-of-thing (IoT) technologies, the NGs-based flexible electronics are paving a new way for creating intelligent electromechanical biomonitoring systems which are also capable of analyzing, transmitting, and deciding. In this review, we cover the recent remarkable developments in monitoring electromechanical physiological signals using NGs-based flexible electronics. We begin by covering the fundamentals of NGs from the perspective of mechanisms, materials, device structures, and manufacturing methods. We then give an overview of NGs-based flexible electronics in various wearable and implantable sensing applications. Finally, the present limitations and future developing trends of this field are discussed and prospected.
机电生物监测对于人类健康评估、疾病预防和生活质量改善至关重要。纳米发电机(NGs)在自供电柔性电子器件(包括压电和静电传感器)中展现出卓越的性能和多功能性。结合人工智能(AI)、第五代(5G)和物联网(IoT)技术,基于NGs的柔性电子器件正在为创建智能机电生物监测系统开辟一条新途径,该系统还能够进行分析、传输和决策。在本综述中,我们涵盖了使用基于NGs的柔性电子器件监测机电生理信号的最新显著进展。我们首先从机理、材料、器件结构和制造方法的角度介绍NGs的基本原理。然后概述基于NGs的柔性电子器件在各种可穿戴和可植入传感应用中的情况。最后,讨论并展望了该领域目前的局限性和未来发展趋势。