Wen Jianfeng, Xu Bingang, Zhou Jinyun
Nanotechnology Center, Institute of Textiles and Clothing, The Hong Kong Polytechnic University, Hung Hom, Kowloon, Hong Kong, People's Republic of China.
Nanomicro Lett. 2019 Oct 17;11(1):89. doi: 10.1007/s40820-019-0321-x.
Wearable supercapacitors (SCs) are gaining prominence as portable energy storage devices. To develop high-performance wearable SCs, the significant relationship among material, structure, and performance inspired us with a delicate design of the highly wearable embroidered supercapacitors made from the conductive fibers composited. By rendering the conductive interdigitally patterned embroidery as both the current collector and skeleton for the SCs, the novel pseudocapacitive material cobalt phosphides were then successfully electrodeposited, forming the first flexible and wearable in-plane embroidery SCs. The electrochemical measurements manifested that the highest specific capacitance was nearly 156.6 mF cm (65.72 F g) at the current density of 0.6 mA cm (0.25 A g), with a high energy density of 0.013 mWh cm (5.55 Wh kg) at a power density of 0.24 mW cm (100 W kg). As a demonstration, a monogrammed pattern was ingeniously designed and embroidered on the laboratory gown as the wearable in-plane SCs, which showed both decent electrochemical performance and excellent flexibility.
可穿戴超级电容器(SCs)作为便携式储能设备正日益受到关注。为了开发高性能的可穿戴SCs,材料、结构和性能之间的重要关系启发我们精心设计了由复合导电纤维制成的高度可穿戴的绣花超级电容器。通过将导电叉指图案化刺绣用作SCs的集流体和骨架,然后成功电沉积了新型赝电容材料磷化钴,形成了首个柔性可穿戴平面绣花SCs。电化学测量表明,在电流密度为0.6 mA cm(0.25 A g)时,最高比电容接近156.6 mF cm(65.72 F g),在功率密度为0.24 mW cm(100 W kg)时,能量密度高达0.013 mWh cm(5.55 Wh kg)。作为演示,在实验室工作服上巧妙地设计并绣上了一个字母图案作为可穿戴平面SCs,其展现出了良好的电化学性能和出色的柔韧性。