Tao Xinglin, Nie Jinhui, Li Shuyao, Shi Yuxiang, Lin Shiquan, Chen Xiangyu, 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, P.R. China.
College of Nanoscience and Technology, University of Chinese Academy of Sciences, Beijing 100049, P.R. China.
ACS Nano. 2021 Jun 22;15(6):10609-10617. doi: 10.1021/acsnano.1c03358. Epub 2021 Jun 8.
Liquid-solid triboelectric nanogenerator (L-S TENG) is one of the major techniques to collect energy from tiny liquids, while the saturated charge density at the L-S interface is the key element to decide its performance. Here, we found that the saturated charge density of L-S contact electrification (CE) can be further increased under the illumination of an ultraviolet (UV) light. The fluorine-containing polymers and SiO are chosen as the electrification materials and with and without UV illumination on the L-S TENG. A series of experiments have been done to rule out the possible influences of anion generation, chemical change of solid surface, ionization of water, and so on. Therefore, we proposed that electrons belonging to water molecules can be excited to high energy states under UV illumination, which then transfer to solid surface and captured by the solid surface. Finally, a photoexcited electron transfer model is proposed to explain the enhancement of CE under the UV illumination. This work not only helps to further understand CE at L-S interface, but also offers an approach to further enhance the performance of L-S TENG, which can promote the TENG applications in the field of microfluidic systems, liquid energy harvesting, and droplet sensory.
液固摩擦电纳米发电机(L-S TENG)是从微小液体中收集能量的主要技术之一,而L-S界面处的饱和电荷密度是决定其性能的关键因素。在此,我们发现L-S接触起电(CE)的饱和电荷密度在紫外(UV)光照射下可进一步提高。选择含氟聚合物和SiO作为起电材料,并对L-S TENG进行有无UV光照的实验。已进行了一系列实验以排除阴离子生成、固体表面化学变化、水的电离等可能的影响。因此,我们提出,水分子中的电子在UV光照下可被激发到高能态,然后转移到固体表面并被固体表面捕获。最后,提出了一个光激发电子转移模型来解释UV光照下起电增强的现象。这项工作不仅有助于进一步理解L-S界面处的起电现象,还提供了一种进一步提高L-S TENG性能的方法,这可以促进TENG在微流体系统、液体能量收集和液滴传感领域的应用。