Fu Xianpeng, Bu Tianzhao, Li Chenglin, Liu Guoxu, Zhang Chi
CAS Center for Excellence in Nanoscience, Beijing Key Laboratory of Micro-Nano Energy and Sensor, Beijing Institute of Nanoenergy and Nanosystems, Chinese Academy of Sciences, Beijing 101400, China.
Nanoscale. 2020 Dec 21;12(47):23929-23944. doi: 10.1039/d0nr06373h. Epub 2020 Nov 27.
Wind energy is a kind of renewable and widely distributed energy and has attracted more and more attention from researchers in both energy harvesting and sensing fields. Here, micro/nano-wind energy harvesters and sensors have been systematically reviewed. Based on the fundamental wind energy harvesting principle, the windmill-based and aeroelastic harvesters are analyzed at first. On this basis, four kinds of energy harvesters for converting wind energy of different regions and scales have been compared and summarized. An electromagnetic energy harvester is exploited to scavenge macro-scale wind energy, while piezoelectric, electrostatic and triboelectric energy harvesters are applied to collect micro-scale wind energy. In addition, several micro/nano-wind sensors have also been surveyed. Passive wind sensors are exploited and improved to realize high precision and multi-functionality, while active wind sensors and self-powered sensing systems are used for wireless and intelligent wind information monitoring. Finally, the existing challenges and future perspectives in both micro/nano-wind energy harvesters and sensors have been discussed.
风能是一种可再生且分布广泛的能源,在能量收集和传感领域已吸引了越来越多研究人员的关注。在此,对微纳风能收集器和传感器进行了系统综述。基于风能收集的基本原理,首先分析了基于风车和气动弹性的收集器。在此基础上,对四种用于转换不同区域和尺度风能的能量收集器进行了比较和总结。利用电磁能量收集器来 scavenge 宏观尺度的风能,而压电、静电和摩擦电能量收集器则用于收集微观尺度的风能。此外,还调研了几种微纳风速传感器。对被动风速传感器进行了改进以实现高精度和多功能性,而主动风速传感器和自供电传感系统则用于无线和智能风信息监测。最后,讨论了微纳风能收集器和传感器当前存在的挑战及未来展望。