首页> 外文期刊>Carbon: An International Journal Sponsored by the American Carbon Society >Screen-printable films of graphene/CoS2/Ni3S4 composites for the fabrication of flexible and arbitrary-shaped all-solid-state hybrid supercapacitors
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Screen-printable films of graphene/CoS2/Ni3S4 composites for the fabrication of flexible and arbitrary-shaped all-solid-state hybrid supercapacitors

机译:石墨烯/ COS2 / Ni3S4复合材料的丝网印刷薄膜用于制造柔性和任意形状的全固态杂交超级电容器

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摘要

Supercapacitors are attracting increasing research interest because they are expected to achieve batterylevel energy density while having a long calendar life and a short charging time. However, the development of large-scale and cost-reasonable production methods for flexible, wearable and arbitraryshaped supercapacitor devices still faces enormous challenges. Herein, a 3D-network, porous graphene/CoS2/Ni3S4 (G/CoS2/Ni3S4) composite electrode has been designed and synthesized through a combination of solvothermal and vulcanization methods. By combining the networked CoS2/Ni3S4 nanoflakes with reduced graphene oxide (RGO) nanosheets, the as-prepared composite electrode exhibits good conductivity, a high density of electrochemically active sites and good cycling stability. The result is a high specific capacitance of 1739 F g(-1) at a current density of 0.5 A g(-1). Significantly, the arbitrary-shaped G/CoS2/Ni3S4 parallel to GF hybrid supercapacitor devices can be printed directly on different substrates, which favorably combine mechanical flexibility, good cycling performance and high energy density. This methodology may be feasible to prepare fully-printable and wearable supercapacitors, and other electronic devices in large scale, thereby holding enormous potential for wearable technologies. (c) 2019 Elsevier Ltd. All rights reserved.
机译:超级电容器吸引了越来越多的研究兴趣,因为它们有望实现电池系统的能量密度,同时具有长日历寿命和短的充电时间。然而,为柔性,可穿戴和翠扣和Qualcapacite器件的大规模和成本合理的生产方法的开发仍面临巨大的挑战。这里,通过溶剂热和硫化方法的组合设计和合成了3D网络,多孔石墨烯/ COS2 / Ni3S4(G / COS2 / Ni3S4)复合电极。通过将网络化的COS2 / Ni3S4纳米薄膜与转氧化物氧化物(RGO)纳米片组合结合,制备的复合电极具有良好的导电性,高密度的电化学活性位点和良好的循环稳定性。结果是在0.5Ag(-1)的电流密度的1739V(-1)的高比电容。值得注意地,可以直接在不同的基板上打印与GF混合超级电容器装置的任意形状的G / COS2 / NI3S4,这有利地相结合机械柔性,良好的循环性能和高能量密度。这种方法可能是可行的,可以是制备可完全可打印和可穿戴的超级电容器,以及大规模的其他电子设备,从而保持可穿戴技术的巨大潜力。 (c)2019年elestvier有限公司保留所有权利。

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