Meng Xiangjiang, Cai Chenchen, Luo Bin, Liu Tao, Shao Yuzheng, Wang Shuangfei, Nie Shuangxi
School of Light Industry and Food Engineering, Guangxi University, Nanning, 530004, People's Republic of China.
Nanomicro Lett. 2023 May 11;15(1):124. doi: 10.1007/s40820-023-01094-6.
With the rapid development of the Internet of Things and flexible electronic technologies, there is a growing demand for wireless, sustainable, multifunctional, and independently operating self-powered wearable devices. Nevertheless, structural flexibility, long operating time, and wearing comfort have become key requirements for the widespread adoption of wearable electronics. Triboelectric nanogenerators as a distributed energy harvesting technology have great potential for application development in wearable sensing. Compared with rigid electronics, cellulosic self-powered wearable electronics have significant advantages in terms of flexibility, breathability, and functionality. In this paper, the research progress of advanced cellulosic triboelectric materials for self-powered wearable electronics is reviewed. The interfacial characteristics of cellulose are introduced from the top-down, bottom-up, and interfacial characteristics of the composite material preparation process. Meanwhile, the modulation strategies of triboelectric properties of cellulosic triboelectric materials are presented. Furthermore, the design strategies of triboelectric materials such as surface functionalization, interfacial structure design, and vacuum-assisted self-assembly are systematically discussed. In particular, cellulosic self-powered wearable electronics in the fields of human energy harvesting, tactile sensing, health monitoring, human-machine interaction, and intelligent fire warning are outlined in detail. Finally, the current challenges and future development directions of cellulosic triboelectric materials for self-powered wearable electronics are discussed.
随着物联网和柔性电子技术的快速发展,对无线、可持续、多功能且能独立运行的自供电可穿戴设备的需求日益增长。然而,结构灵活性、长工作时间和穿戴舒适性已成为可穿戴电子产品广泛应用的关键要求。摩擦纳米发电机作为一种分布式能量收集技术,在可穿戴传感的应用开发方面具有巨大潜力。与刚性电子器件相比,纤维素基自供电可穿戴电子产品在柔韧性、透气性和功能性方面具有显著优势。本文综述了用于自供电可穿戴电子产品的先进纤维素基摩擦电材料的研究进展。从自上而下、自下而上以及复合材料制备过程的界面特性等方面介绍了纤维素的界面特性。同时,给出了纤维素基摩擦电材料摩擦电性能的调控策略。此外,系统地讨论了摩擦电材料的设计策略,如表面功能化、界面结构设计和自组装等。特别详细概述了纤维素基自供电可穿戴电子产品在人体能量收集、触觉传感、健康监测、人机交互和智能火灾预警等领域的应用。最后,讨论了纤维素基摩擦电材料用于自供电可穿戴电子产品当前面临的挑战和未来的发展方向。