Luo Guoxi, Zhang Qiankun, Li Min, Chen Ke, Zhou Wenke, Luo Yunyun, Li Zhikang, Wang Lu, Zhao Libo, Teh Kwok Siong, Jiang Zhuangde
State Key Laboratory for Manufacturing Systems Engineering, International Joint Laboratory for Micro/Nano Manufacturing and Measurement Technologies, Xi'an Jiaotong University, Xi'an, Shannxi 710049, People's Republic of China.
School of Mechanical Engineering, Xi'an Jiaotong University, Xi'an, Shannxi 710049, People's Republic of China.
Nanotechnology. 2021 Jul 14;32(40). doi: 10.1088/1361-6528/ac1019.
Electrostatic nanogenerators or capacitive sensors that leverage electrostatic induction for power generation or sensing, has attracted significant interests due to their simple structure, ease of fabrication, and high device stability. However, in order for such devices to work, an additional power source or a post-charging process is necessary to activate the electrostatic effect. In this work, an electrostatic nanogenerator is fabricated using electrospun polystyrene (PS) mats and dip-coated graphene oxide (GO) films as the self-charged components. The electret performances of the PS mats and GO films are characterized via the electrostatic force microscopy phase shift and surface potential measurements. With a multilayer device structure that consists of top electrodes/GO films/spacer/electrospun PS mats/bottom electrodes, the resultant device acts as an electrostatic generator that operates in the noncontact mode. The nanogenerator can output a peak voltage of ca. 6.41 V and a peak current of ca. 6.57 nA at a rate of 1 Hz of mechanical compression, and with no attenuation of electrical outputs even after 50 000 cycles over a 13 h period. Furthermore, this as-prepared device is also capable of serving as a self-powered capacitive sensor for detection of tiny mechanical impacts and measurement of human finger bending. This results of this work provides a new avenue to easily fabricate electrostatic nanogenerators with high durability and self-powered capacitive sensors for the detection of small impacts.
利用静电感应进行发电或传感的静电纳米发电机或电容式传感器,因其结构简单、易于制造和器件稳定性高而备受关注。然而,为了使这类器件工作,需要额外的电源或后充电过程来激活静电效应。在这项工作中,使用静电纺丝聚苯乙烯(PS)垫和浸涂氧化石墨烯(GO)薄膜作为自充电组件制造了一种静电纳米发电机。通过静电力显微镜相移和表面电位测量对PS垫和GO薄膜的驻极体性能进行了表征。具有由顶部电极/GO薄膜/间隔层/静电纺丝PS垫/底部电极组成的多层器件结构,所得器件用作以非接触模式运行的静电发电机。该纳米发电机在1 Hz的机械压缩频率下可输出约6.41 V的峰值电压和约6.57 nA的峰值电流,并且在13小时内经过50000次循环后电输出也没有衰减。此外,这种制备好的器件还能够用作自供电电容式传感器,用于检测微小的机械冲击和测量人手指的弯曲。这项工作的结果为轻松制造具有高耐久性的静电纳米发电机和用于检测小冲击的自供电电容式传感器提供了一条新途径。