Park Taegyu, Jang Yongwoo, Park Jong Woo, Kim Hyunsoo, Kim Seon Jeong
Center for Self-powered Actuation, Department of Biomedical Engineering, Hanyang University Seoul 04736 Korea
RSC Adv. 2020 Apr 7;10(24):14007-14012. doi: 10.1039/d0ra01398f. eCollection 2020 Apr 6.
Flexible and stretchable fiber supercapacitors have been progressively improved for wearable electronic devices. However, they should be further improved with respect to stretchable range and stable electrochemical performance during dynamic movement when considering the tensile range for wearable applications. Here, we report a quasi-solid-state circular knitted MnO@CNT supercapacitor with high tensile range. To fabricate this, CNT fibers were knitted into a circular shape using a knitting machine then subsequently electrochemically deposited by a pseudocapacitive material, MnO. Consequently, the knitted MnO@CNT fiber supercapacitors were structurally 100% stretchable, and their energy storage performance remained stable during knitted capacitor stretching of up to 100%. Maximum linear capacitance and area capacitance are considerably large (321.08 mF cm, 511.28 mF cm). In addition, the supercapacitor showed negligible loss of capacitance after 10 000 repeated charge/discharge cycles and dynamic stretching cycle testing. Furthermore, we also provided double-walled knitted MnO@CNT supercapacitors by symmetrically inserting one knitted supercapacitor into another. The double-walled supercapacitor also exhibited a stable stretchability of up to 100% without loss of capacitance. Therefore, this highly stretchable fiber-type supercapacitor could be utilized for energy storage in wearable devices.
柔性可拉伸纤维超级电容器在可穿戴电子设备中已得到逐步改进。然而,考虑到可穿戴应用的拉伸范围,在拉伸范围和动态运动过程中的稳定电化学性能方面仍需进一步改进。在此,我们报道了一种具有高拉伸范围的准固态圆形针织MnO@CNT超级电容器。为此,使用针织机将CNT纤维针织成圆形,然后用电化学方法沉积赝电容材料MnO。因此,针织MnO@CNT纤维超级电容器在结构上可100%拉伸,并且在针织电容器拉伸高达100%的过程中其储能性能保持稳定。最大线性电容和面积电容相当大(321.08 mF/cm,511.28 mF/cm)。此外,该超级电容器在10000次重复充放电循环和动态拉伸循环测试后,电容损失可忽略不计。此外,我们还通过将一个针织超级电容器对称地插入另一个中来提供双壁针织MnO@CNT超级电容器。双壁超级电容器在高达100%的拉伸率下也表现出稳定的拉伸性且无电容损失。因此,这种高可拉伸的纤维型超级电容器可用于可穿戴设备中的能量存储。