Xu Liang, Wu Hao, Yao Guo, Chen Libo, Yang Xiaodan, Chen Baodong, Huang Xin, Zhong Wei, Chen Xiangyu, Yin Zhouping, Wang Zhong Lin
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 , 100083 , People's Republic of China.
School of Nanoscience and Technology , University of Chinese Academy of Sciences , Beijing , 100049 , People's Republic of China.
ACS Nano. 2018 Oct 23;12(10):10262-10271. doi: 10.1021/acsnano.8b05359. Epub 2018 Sep 18.
Electroadhesion generates an adhesion force using an externally applied power source, which has versatile applications in robotics and material handling. In this study, a self-powered electroadhesion system using enhanced triboelectric nanogenerators (TENGs) to supply power for electroadhesion is presented. By introducing a triboelectric charge supplement channel, the open circuit voltage of the TENG can be significantly boosted by over 10 times, from ∼230 V to more than 3300 V for a single TENG unit, providing sufficiently high voltage for an electroadhesive patch to generate enough adhesion for practical use. The charge supplement channel takes effect through a replenishing mechanism for dissipated charges, maintaining an optimal charge distribution throughout TENG electrodes, which enables the highest open circuit voltage under given surface charge density and device configuration. The fabricated self-powered electroadhesion system shows the ability to manipulate objects of various materials via easy and straightforward operations, demonstrating a great potential for applications in material handling and robotics. Moreover, the voltage enhancement mechanism by the charge supplement channel could be extended to TENGs of other modes, which can provide reliable power sources for various applications that require a high voltage.
电粘附利用外部施加的电源产生粘附力,在机器人技术和材料处理方面有广泛应用。在本研究中,提出了一种利用增强型摩擦纳米发电机(TENG)为电粘附供电的自供电电粘附系统。通过引入摩擦电荷补充通道,TENG的开路电压可显著提高10倍以上,单个TENG单元的开路电压从约230V提高到超过3300V,为电粘附贴片提供足够高的电压,以产生实际应用所需的足够粘附力。电荷补充通道通过耗散电荷的补充机制起作用,在整个TENG电极上保持最佳电荷分布,这使得在给定表面电荷密度和器件配置下能够获得最高开路电压。所制备的自供电电粘附系统显示出通过简单直接的操作操纵各种材料物体的能力,在材料处理和机器人技术方面具有巨大的应用潜力。此外,电荷补充通道的电压增强机制可扩展到其他模式的TENG,可为各种需要高电压的应用提供可靠的电源。