Han Duri, Kim Minju, Lee Sojung, Choi Changsoon
Department of Energy and Materials Engineering, Dongguk University, 30 Pildong-ro, 1-gil, Jung-gu, Seoul 04620, Republic of Korea.
Nanomaterials (Basel). 2023 Sep 18;13(18):2581. doi: 10.3390/nano13182581.
Energy storage in a one-dimensional format is increasingly vital for the functionality of wearable technologies and is garnering attention from various sectors, such as smart apparel, the Internet of Things, e-vehicles, and robotics. Yarn-based supercapacitors are a particularly compelling solution for wearable energy reserves owing to their high power densities and adaptability to the human form. Furthermore, these supercapacitors can be seamlessly integrated into textile fabrics for practical utility across various types of clothing. The present review highlights the most recent innovations and research directions related to yarn-based supercapacitors. Initially, we explore different types of electrodes and active materials, ranging from carbon-based nanomaterials to metal oxides and conductive polymers, that are being used to optimize electrochemical capacitance. Subsequently, we survey different methodologies for loading these active materials onto yarn electrodes and summarize innovations in stretchable yarn designs, such as coiling and buckling. Finally, we outline a few pressing research challenges and future research directions in this field.
一维储能对于可穿戴技术的功能日益重要,并受到智能服装、物联网、电动汽车和机器人技术等各个领域的关注。基于纱线的超级电容器因其高功率密度和对人体形态的适应性,是可穿戴能量储备的一种特别有吸引力的解决方案。此外,这些超级电容器可以无缝集成到纺织面料中,以便在各种类型的服装中实际应用。本综述重点介绍了与基于纱线的超级电容器相关的最新创新和研究方向。首先,我们探讨了不同类型的电极和活性材料,从碳基纳米材料到金属氧化物和导电聚合物,这些材料被用于优化电化学电容。随后,我们研究了将这些活性材料负载到纱线电极上的不同方法,并总结了可拉伸纱线设计的创新,如卷曲和屈曲。最后,我们概述了该领域一些紧迫的研究挑战和未来的研究方向。