Gao Nan, Xu Guodong, Chang Gang, Wu Yuxiang
Institute of Intelligent Sport and Proactive Health, Department of Health and Physical Education, Jianghan University, Wuhan, 430056, China.
Ministry of Education Key Laboratory for the Green Preparation and Application of Functional Materials, Hubei Key Laboratory of Polymer Materials, School of Materials Science and Engineering, Hubei University, No.368 Youyi Avenue, Wuchang, Wuhan, 430062, China.
Adv Sci (Weinh). 2024 Oct 28:e2409178. doi: 10.1002/advs.202409178.
The rapid development of wearable sweat sensors has demonstrated their potential for continuous, non-invasive disease diagnosis and health monitoring. Emerging energy harvesters capable of converting various environmental energy sources-biomechanical, thermal, biochemical, and solar-into electrical energy are revolutionizing power solutions for wearable devices. Based on self-powered technology, the integration of the energy harvesters with wearable sweat sensors can drive the device for biosensing, signal processing, and data transmission. As a result, self-powered sweat sensors are able to operate continuously without external power or charging, greatly facilitating the development of wearable electronics and personalized healthcare. This review focuses on the recent advances in self-powered sweat sensors for personalized healthcare, covering sweat sensors, energy harvesters, energy management, and applications. The review begins with the foundations of wearable sweat sensors, providing an overview of their detection methods, materials, and wearable devices. Then, the working mechanism, structure, and a characteristic of different types of energy harvesters are discussed. The features and challenges of different energy harvesters in energy supply and energy management of sweat sensors are emphasized. The review concludes with a look at the future prospects of self-powered sweat sensors, outlining the trajectory of the field and its potential to flourish.
可穿戴汗液传感器的迅速发展已彰显出其在连续、无创疾病诊断和健康监测方面的潜力。能够将各种环境能源(生物机械能、热能、生物化学能和太阳能)转化为电能的新型能量收集器正在彻底改变可穿戴设备的供电解决方案。基于自供电技术,将能量收集器与可穿戴汗液传感器集成,能够驱动设备进行生物传感、信号处理和数据传输。因此,自供电汗液传感器能够在无需外部电源或充电的情况下持续运行,极大地推动了可穿戴电子产品和个性化医疗保健的发展。本综述聚焦于用于个性化医疗保健的自供电汗液传感器的最新进展,涵盖汗液传感器、能量收集器、能量管理及应用。综述开篇介绍可穿戴汗液传感器的基础,概述其检测方法、材料和可穿戴设备。接着,讨论不同类型能量收集器的工作机制、结构和特性。强调不同能量收集器在汗液传感器能量供应和能量管理方面的特点及挑战。综述最后展望自供电汗液传感器的未来前景,勾勒该领域的发展轨迹及其蓬勃发展的潜力。