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一种基于分级硫化镍钴@碳电极的柔性可穿戴自支撑混合超级电容器装置。

A flexible wearable self-supporting hybrid supercapacitor device based on hierarchical nickel cobalt sulfide@C electrode.

作者信息

Chen Xin, Sun Ming, Jaber Fadi, Nezhad Erfan Zal, Hui K S, Li Zhenwu, Bae Sungchul, Ding Muge

机构信息

Department of Mechanical Engineering, Heze University, Heze, Shandong, China.

Department of Biomedical Engineering, Ajman University, Ajman, United Arab Emirates.

出版信息

Sci Rep. 2023 Sep 20;13(1):15555. doi: 10.1038/s41598-023-42278-9.

Abstract

A flexible wearable electrode consisting of nickel-cobalt sulfide (NCS) nanowires was fabricated in this study. Self-supporting NCS was grown in situ on porous carbon nanofibers without a binder as a novel material for supercapacitor electrodes. The NCS nanowires were grown using cyclic voltammetry electrodeposition, which proved to be a fast and environmentally friendly method with good controllability of the material structure. One-dimensional carbon nanofibers (C) have high surface-area-to-volume ratios, short ion transmission distances, excellent mechanical strengths, and remarkable flexibilities. Moreover, the NCS@C flexible electrode exhibited a synergetic effect with the active compounds, and the dense active sites were uniformly distributed across the entire surface of the carbon fibers, enabling rapid electron transport and enhancing the electrochemical properties of the NCS@C nanowires. The NCS@C achieved specific capacitances of 334.7 and 242.0 mAh g at a current density of 2 A g and high current densities (up to 40 A g), respectively, corresponding to a 72.3% retention rate. An NCS@C-nanofilm-based cathode and an activated-carbon-based anode were used to fabricate a flexible asymmetric supercapacitor. The device exhibited high energy and power densities of 12.91 Wh kg and 358 W kg, respectively.

摘要

本研究制备了一种由硫化镍钴(NCS)纳米线组成的柔性可穿戴电极。自支撑的NCS原位生长在多孔碳纳米纤维上,无需使用粘结剂,作为超级电容器电极的新型材料。采用循环伏安电沉积法生长NCS纳米线,该方法快速、环保,且对材料结构具有良好的可控性。一维碳纳米纤维(C)具有高的表面积与体积比、短的离子传输距离、优异的机械强度和显著的柔韧性。此外,NCS@C柔性电极与活性化合物表现出协同效应,密集的活性位点均匀分布在碳纤维的整个表面,实现了快速的电子传输并增强了NCS@C纳米线的电化学性能。在电流密度为2 A g和高电流密度(高达40 A g)下,NCS@C的比电容分别达到334.7和242.0 mAh g,保留率为72.3%。使用基于NCS@C纳米薄膜的阴极和基于活性炭的阳极制备了柔性非对称超级电容器。该器件分别表现出12.91 Wh kg和358 W kg的高能量密度和功率密度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1f4a/10511439/80e806b6ff17/41598_2023_42278_Fig1_HTML.jpg

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