Institute for Frontier Materials, Deakin University, Geelong Waurn Ponds Campus, VIC, 3216, Australia.
ARC Centre of Excellence for Electromaterials Science, Intelligent Polymer Research Institute, Australian Institute of Innovative Materials, University of Wollongong, Wollongong, NSW, 2500, Australia.
Macromol Rapid Commun. 2018 Jul;39(13):e1800103. doi: 10.1002/marc.201800103. Epub 2018 May 17.
The development of wearable devices such as smart watches, intelligent garments, and wearable health-monitoring devices calls for suitable energy storage devices which have matching mechanical properties and can provide sufficient power for a reasonable duration. Stretchable fiber-based supercapacitors are emerging as a promising candidates for this purpose because they are lightweight, flexible, have high energy and power density, and the potential for easy integration into traditional textile processes. An important characteristic that is oftentimes ignored is stretchability-fiber supercapacitors should be able to accommodate large elongation during use, endure a range of bending motions, and then revert to its original form without compromising electrical and electrochemical performance. This article summarizes the current research progress on stretchable fiber-based supercapacitors and discusses the existing challenges on material preparation and fiber-based device fabrication. This article aims to help researchers in the field to better understand the challenges related to material design and fabrication approaches of fiber-based supercapacitors, and to provide insights and guidelines toward their wearability.
可穿戴设备(如智能手表、智能服装和可穿戴健康监测设备)的发展需要具有匹配机械性能的合适储能设备,这些设备能够在合理的时间内提供足够的功率。可拉伸纤维基超级电容器作为一种很有前途的候选材料,因为它们具有重量轻、灵活、高能量和功率密度以及易于集成到传统纺织工艺中的潜力。一个常常被忽略的重要特性是可拉伸性——纤维超级电容器在使用过程中应该能够容纳大的伸长,承受各种弯曲运动,然后在不影响其电和电化学性能的情况下恢复到原来的形状。本文总结了可拉伸纤维基超级电容器的最新研究进展,并讨论了在材料制备和纤维基器件制造方面存在的挑战。本文旨在帮助该领域的研究人员更好地理解纤维基超级电容器的材料设计和制造方法所面临的挑战,并为其可穿戴性提供一些见解和指导。