Niu Simiao, Wang Xiaofeng, Yi Fang, Zhou Yu Sheng, Wang Zhong Lin
School of Materials Science and Engineering, Georgia Institute of Technology, Atlanta, Georgia 30332, USA.
Department of Precision Instrument, Tsinghua University, Beijing 100084, China.
Nat Commun. 2015 Dec 11;6:8975. doi: 10.1038/ncomms9975.
Human biomechanical energy is characterized by fluctuating amplitudes and variable low frequency, and an effective utilization of such energy cannot be achieved by classical energy-harvesting technologies. Here we report a high-efficient self-charging power system for sustainable operation of mobile electronics exploiting exclusively human biomechanical energy, which consists of a high-output triboelectric nanogenerator, a power management circuit to convert the random a.c. energy to d.c. electricity at 60% efficiency, and an energy storage device. With palm tapping as the only energy source, this power unit provides a continuous d.c. electricity of 1.044 mW (7.34 W m(-3)) in a regulated and managed manner. This self-charging unit can be universally applied as a standard 'infinite-lifetime' power source for continuously driving numerous conventional electronics, such as thermometers, electrocardiograph system, pedometers, wearable watches, scientific calculators and wireless radio-frequency communication system, which indicates the immediate and broad applications in personal sensor systems and internet of things.
人体生物机械能具有波动幅度和可变低频的特点,而传统的能量收集技术无法有效利用这种能量。在此,我们报告了一种高效的自充电电源系统,该系统专门利用人体生物机械能实现移动电子设备的可持续运行,它由一个高输出摩擦纳米发电机、一个将随机交流电能量以60%的效率转换为直流电的电源管理电路以及一个能量存储装置组成。以手掌轻拍作为唯一能源,该电源单元以规范和管理的方式提供1.044毫瓦(7.34瓦每立方米)的连续直流电。这种自充电单元可普遍用作标准的“无限寿命”电源,用于持续驱动众多传统电子设备,如温度计、心电图系统、计步器、可穿戴手表、科学计算器和无线射频通信系统,这表明其在个人传感器系统和物联网中有直接且广泛的应用。