Zhi Chuanwei, Shi Shuo, Wu Hanbai, Si Yifan, Zhang Shuai, Lei Leqi, Hu Jinlian
Department of Biomedical Engineering, City University of Hong Kong, Hong Kong, Hong Kong SAR, 999077, China.
City University of Hong Kong Shenzhen Research Institute, Shenzhen, 518057, P. R. China.
Adv Mater. 2024 Jun;36(26):e2401264. doi: 10.1002/adma.202401264. Epub 2024 Apr 12.
Over the past few decades, significant progress in piezo-/triboelectric nanogenerators (PTEGs) has led to the development of cutting-edge wearable technologies. Nanofibers with good designability, controllable morphologies, large specific areas, and unique physicochemical properties provide a promising platform for PTEGs for various advanced applications. However, the further development of nanofiber-based PTEGs is limited by technical difficulties, ranging from materials design to device integration. Herein, the current developments in PTEGs based on electrospun nanofibers are systematically reviewed. This review begins with the mechanisms of PTEGs and the advantages of nanofibers and nanodevices, including high breathability, waterproofness, scalability, and thermal-moisture comfort. In terms of materials and structural design, novel electroactive nanofibers and structure assemblies based on 1D micro/nanostructures, 2D bionic structures, and 3D multilayered structures are discussed. Subsequently, nanofibrous PTEGs in applications such as energy harvesters, personalized medicine, personal protective equipment, and human-machine interactions are summarized. Nanofiber-based PTEGs still face many challenges such as energy efficiency, material durability, device stability, and device integration. Finally, the research gap between research and practical applications of PTEGs is discussed, and emerging trends are proposed, providing some ideas for the development of intelligent wearables.
在过去几十年中,压电/摩擦纳米发电机(PTEGs)取得的重大进展推动了前沿可穿戴技术的发展。具有良好可设计性、可控形态、大比表面积和独特物理化学性质的纳米纤维为用于各种先进应用的PTEGs提供了一个有前景的平台。然而,基于纳米纤维的PTEGs的进一步发展受到从材料设计到器件集成等技术难题的限制。在此,对基于电纺纳米纤维的PTEGs的当前发展进行系统综述。本综述首先介绍PTEGs的机制以及纳米纤维和纳米器件的优势,包括高透气性、防水性、可扩展性和热湿舒适性。在材料和结构设计方面,讨论了基于一维微/纳米结构、二维仿生结构和三维多层结构的新型电活性纳米纤维和结构组件。随后,总结了纳米纤维PTEGs在能量收集器、个性化医疗、个人防护装备和人机交互等应用中的情况。基于纳米纤维的PTEGs仍然面临许多挑战,如能量效率、材料耐久性、器件稳定性和器件集成等。最后,讨论了PTEGs研究与实际应用之间的差距,并提出了新趋势,为智能可穿戴设备的发展提供了一些思路。