Wang Sheng-Ji, Jing Xin, Mi Hao-Yang, Chen Zhuo, Zou Jian, Liu Zi-Hao, Feng Pei-Yong, Liu Yuejun, Zhang Zhi, Shang Yinghui
Key Laboratory of Advanced Packaging Materials and Technology of Hunan Province, Hunan University of Technology, Zhuzhou 412007, China.
National Engineering Research Center for Advanced Polymer Processing Technology, Zhengzhou University, Zhengzhou 450000, China.
Polymers (Basel). 2022 Apr 2;14(7):1452. doi: 10.3390/polym14071452.
In recent years, with the appearance of the triboelectric nanogenerator (TENG), there has been a wave of research on small energy harvesting devices and self-powered wearable electronics. Hydrogels-as conductive materials with excellent tensile properties-have been widely focused on by researchers, which encouraged the development of the hydrogel-based TENGs (H-TENGs) that use the hydrogel as an electrode. Due to the great feasibility of adjusting the conductivity and mechanical property as well as the microstructure of the hydrogels, many H-TENGs with excellent performance have emerged, some of which are capable of excellent outputting ability with an output voltage of 992 V, and self-healing performance which can spontaneously heal within 1 min without any external stimuli. Although there are numerous studies on H-TENGs with excellent performance, a comprehensive review paper that systematically correlates hydrogels' properties to TENGs is still absent. Therefore, in this review, we aim to provide a panoramic overview of the working principle as well as the preparation strategies that significantly affect the properties of H-TENGs. We review hydrogel classification categories such as their network composition and their potential applications on sensing and energy harvesting, and in biomedical fields. Moreover, the challenges faced by the H-TENGs are also discussed, and relative future development of the H-TENGs are also provided to address them. The booming growth of H-TENGs not only broadens the applications of hydrogels into new areas, but also provides a novel alternative for the sustainable power sources.
近年来,随着摩擦纳米发电机(TENG)的出现,掀起了一股关于小型能量收集装置和自供电可穿戴电子产品的研究热潮。水凝胶作为具有优异拉伸性能的导电材料,受到了研究人员的广泛关注,这推动了以水凝胶为电极的基于水凝胶的摩擦纳米发电机(H-TENG)的发展。由于调节水凝胶的导电性、机械性能以及微观结构具有很大的可行性,许多性能优异的H-TENG应运而生,其中一些具有出色的输出能力,输出电压可达992 V,还具有自修复性能,能够在1分钟内无需任何外部刺激自发愈合。尽管对性能优异的H-TENG有大量研究,但仍缺乏一篇系统地将水凝胶性能与TENG相关联的综合综述文章。因此,在本综述中,我们旨在全面概述其工作原理以及对H-TENG性能有显著影响的制备策略。我们综述了水凝胶的分类类别,如它们的网络组成以及在传感、能量收集和生物医学领域的潜在应用。此外,还讨论了H-TENG面临的挑战,并提出了H-TENG相对的未来发展方向以应对这些挑战。H-TENG的蓬勃发展不仅将水凝胶的应用拓展到新领域,还为可持续电源提供了一种新颖的替代方案。