Pandey Rajagopalan, Khandelwal Gaurav, Palani Iyamperumal Anand, Singh Vipul, Kim Sang-Jae
Mechatronics and Instrumentation Lab, Discipline of Metallurgy Engineering and Materials Science, Indian Institute of Technology Indore, Indore, 453552, India.
Nanomaterials and Systems Lab, Department of Mechatronics Engineering, Jeju National University, Jeju, 63243, South Korea. kimsangj@
Nanoscale. 2019 Aug 7;11(29):14032-14041. doi: 10.1039/c9nr02560j. Epub 2019 Jul 16.
Zinc oxide nanorods synthesized via a wet chemical approach were used to fabricate an ultra-flexible flutter-piezoelectric nanogenerator (UF-PENG). The UF-PENG has demonstrated good capabilities to act as not only an energy generator but also a wind velocity/direction sensor. Using the same procedure, the ZnO nanorods have been doped with lanthanum, and the doped device was found to exhibit three times the output of intrinsic PENG. Furthermore, through the process of annealing, the output of the PENG was enhanced. Peak power density calculations, capacitance charging, and stability analysis (1500 cycles) were performed. We have implemented this approach to make an ultralightweight/sensitive and wind modulated device which can flutter in low wind speed and can operate under a light breeze (2.8-3.8 m s). The device was able to harvest a voltage of over 1.6 V at 3.8 m s. The observed results indicate that the developed device could work as a self-powered wind velocity sensor. It can also function as a wind direction sensor (0-90°). Finite element simulation was performed to investigate the underlying mechanism. Additionally, the stability analysis of the sensor for more than 4500 cycles was conducted, and the obtained results showed the high stability of the device.
通过湿化学方法合成的氧化锌纳米棒被用于制造一种超柔性颤振压电纳米发电机(UF-PENG)。该UF-PENG已展示出不仅能作为能量发生器,还能作为风速/风向传感器的良好能力。采用相同的程序,氧化锌纳米棒已被镧掺杂,且发现掺杂后的器件输出是本征PENG的三倍。此外,通过退火过程,PENG的输出得到了增强。进行了峰值功率密度计算、电容充电和稳定性分析(1500次循环)。我们已采用这种方法制造出一种超轻/灵敏且受风力调制的器件,它能在低风速下颤振并能在微风(2.8 - 3.8米/秒)下运行。该器件在3.8米/秒时能够收获超过1.6伏的电压。观察结果表明,所开发的器件可作为自供电风速传感器工作。它还能作为风向传感器(0 - 90°)发挥作用。进行了有限元模拟以研究其潜在机制。此外,对该传感器进行了超过4500次循环的稳定性分析,所得结果表明该器件具有高稳定性。