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基于镍钴双氢氧化物和金属化碳纤维上的钢笔墨水电极的柔性纤维状超级电容器。

Flexible Fiber-Shaped Supercapacitor Based on Nickel-Cobalt Double Hydroxide and Pen Ink Electrodes on Metallized Carbon Fiber.

机构信息

Department of Mechanical and Biomedical Engineering, City University of Hong Kong , Hong Kong SAR, Kowloon 999077, Hong Kong.

Shenzhen Research Institute, City University of Hong Kong , Shenzhen 518057, China.

出版信息

ACS Appl Mater Interfaces. 2017 Feb 15;9(6):5409-5418. doi: 10.1021/acsami.6b16101. Epub 2017 Feb 6.

Abstract

Flexible fiber-shaped supercapacitors (FSSCs) are recently of extensive interest for portable and wearable electronic gadgets. Yet the lack of industrial-scale flexible fibers with high conductivity and capacitance and low cost greatly limits its practical engineering applications. To this end, we here present pristine twisted carbon fibers (CFs) coated with a thin metallic layer via electroless deposition route, which exhibits exceptional conductivity with ∼300% enhancement and superior mechanical strength (∼1.8 GPa). Subsequently, the commercially available conductive pen ink modified high conductive composite fibers, on which uniformly covered ultrathin nickel-cobalt double hydroxides (Ni-Co DHs) were introduced to fabricate flexible FSSCs. The synthesized functionalized hierarchical flexible fibers exhibit high specific capacitance up to 1.39 F·cm in KOH aqueous electrolyte. The asymmetric solid-state FSSCs show maximum specific capacitance of 28.67 mF·cm and energy density of 9.57 μWh·cm at corresponding power density as high as 492.17 μW·cm in PVA/KOH gel electrolyte, with demonstrated high flexibility during stretching, demonstrating their potential in flexible electronic devices and wearable energy systems.

摘要

柔性纤维状超级电容器 (FSSC) 最近因其在便携式和可穿戴电子设备中的广泛应用而备受关注。然而,缺乏具有高导电性、电容和低成本的工业规模柔性纤维极大地限制了其实际工程应用。为此,我们通过化学镀方法制备了原始的扭曲碳纤维 (CF) 表面涂覆有一层薄薄的金属层,其表现出出色的导电性,可提高约 300%,同时具有优异的机械强度(约 1.8GPa)。随后,在商业上可获得的导电笔墨水改性的高导电复合纤维上,引入了均匀覆盖的超薄镍钴双氢氧化物 (Ni-Co DHs) 来制备柔性 FSSC。所合成的功能化分层柔性纤维在 KOH 水性电解质中表现出高达 1.39 F·cm 的高比电容。非对称固态 FSSC 在 PVA/KOH 凝胶电解质中,在高达 492.17 μW·cm 的相应功率密度下,表现出高达 28.67 mF·cm 的最大比电容和 9.57 μWh·cm 的能量密度,并且在拉伸过程中表现出良好的柔韧性,展示了它们在柔性电子设备和可穿戴能源系统中的应用潜力。

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