Shang Mingli, Zong Yan, Zhang Xiujun
College of Bioresources Chemical and Materials Engineering, Shaanxi University of Science and Technology, Xi'an 710021, China.
Modern Aviation College, Guangzhou Institute of Science and Technology, Huizhou 516122, China.
Sensors (Basel). 2025 May 21;25(10):3232. doi: 10.3390/s25103232.
Cellulose nanofibril (CNF) is a sort of novel nanomaterial directly extracted from plant resources, inheriting the advantages of cellulose as a cheap, green and renewable material for the development of new-generation eco-friendly electronics. In recent years, CNF-based triboelectric nanogenerator (TENG) has attracted increasing research interests, as the unique chemical, morphological, and electrical properties of CNF render the device with considerable flexibility, mechanical strength, and triboelectric output. In this study, we explore the use of isoreticular metal-organic frameworks (IRMOF) as functional filler to improve the performance of CNF based TENGs. Two types of IRMOFs that own the same network topology, namely IRMOF-1 and its aminated version IRMOF-3, are embedded with CNF to fabricated TENGs; their contribution to triboelectric output enhancement, including the roughness effect induced by large particles as well as the charge induction effect arisen from -NH groups, are discussed. The performance-enhanced CNF-based TENG with 0.6 wt.% of IRMOF-3 is utilized to harvest mechanical energy from human activities and charge commercial capacitors, from which the electrical energy is sufficient to light up light-emitting diodes (LEDs) and drive low-power electronic devices. In addition, a locomotor analysis system is established by assembling the above TENGs and capacitors into a 3 × 3 sensing array, which allowed signal extraction from each sensing unit to display a motion distribution map. These results demonstrate the great potential of CNF/IRMOF-based TENGs for development of self-powered sensing devices for long-term motion monitoring.
纤维素纳米原纤(CNF)是一种直接从植物资源中提取的新型纳米材料,它继承了纤维素作为廉价、绿色和可再生材料的优点,可用于开发新一代环保电子产品。近年来,基于CNF的摩擦电纳米发电机(TENG)引起了越来越多的研究兴趣,因为CNF独特的化学、形态和电学性质使该器件具有相当大的柔韧性、机械强度和摩擦电输出。在本研究中,我们探索使用同构金属有机框架(IRMOF)作为功能填料来提高基于CNF的TENG的性能。将两种具有相同网络拓扑结构的IRMOF,即IRMOF-1及其胺化版本IRMOF-3,与CNF嵌入以制造TENG;讨论了它们对摩擦电输出增强的贡献,包括大颗粒引起的粗糙度效应以及-NH基团产生的电荷感应效应。基于性能增强的含0.6 wt.% IRMOF-3的CNF的TENG被用于从人类活动中收集机械能并为商业电容器充电,其中的电能足以点亮发光二极管(LED)并驱动低功率电子设备。此外,通过将上述TENG和电容器组装成一个3×3传感阵列建立了一个运动分析系统,该系统允许从每个传感单元提取信号以显示运动分布图。这些结果证明了基于CNF/IRMOF的TENG在开发用于长期运动监测的自供电传感设备方面具有巨大潜力。