Recent Advances in Self-powered Sensors Based on Nanogenerators: From Material and Structural Design to Cutting-Edge Sensing Applications

IF 4.3 3区 材料科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC ACS Applied Electronic Materials Pub Date : 2024-05-22 DOI:10.1021/acsaelm.4c00157
Mengna Ren, Dedong Guo, Qingzhou Wang, Shuheng Dong, Xueqian Liu, Jingjing Guo, Xuqi Zheng, Lei Qin, Qihui Zhou*, Zhao Yao*, Yang Li* and Yuanyue Li*, 
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Abstract

The utilization of sensors has become indispensable in the advent of an intelligent era characterized by artificial intelligence, 5G communication, big data, and other cutting-edge technologies. Traditional sensors require external power sources or batteries, resulting in a complex sensing system that does not promote the development of sustainable and environmentally friendly applications for health monitoring. In recent years, the electrical output and stability of piezoelectric, triboelectric, thermoelectric, and hybrid nanogenerators have been significantly improved, enabling their widespread role in the development of self-powered sensors. The sensors are capable of performing sensing tasks by converting their own energy, thereby obviating the need for an external power supply. In this paper, we initially explore the operating mechanisms, device materials, and structures of diverse nanogenerators and evaluate their output efficacy. Subsequently, we showcase the latest advancements in self-powered sensor systems, spanning various fields such as biomedical and healthcare, wearable devices, sound monitoring, smart vehicles, environmental monitoring, and smart cities. The paper also explores the future potential of self-powered sensor systems, in addition to discussing their practical applications.

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基于纳米发电机的自供电传感器的最新进展:从材料和结构设计到尖端传感应用
在以人工智能、5G 通信、大数据和其他尖端技术为特征的智能时代到来之际,传感器的使用已变得不可或缺。传统传感器需要外接电源或电池,导致传感系统复杂,不利于开发可持续和环保的健康监测应用。近年来,压电、三电、热电和混合纳米发电机的电输出和稳定性得到了显著提高,使其在自供电传感器的开发中发挥了广泛作用。这些传感器能够通过转换自身能量来执行传感任务,从而无需外部电源。在本文中,我们首先探讨了各种纳米发电机的运行机制、器件材料和结构,并评估了它们的输出功效。随后,我们展示了自供电传感器系统的最新进展,涉及生物医学和医疗保健、可穿戴设备、声音监测、智能汽车、环境监测和智能城市等多个领域。本文还探讨了自供电传感器系统的未来潜力,以及它们的实际应用。
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CiteScore
7.20
自引率
4.30%
发文量
567
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