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首页> 外文期刊>Carbon: An International Journal Sponsored by the American Carbon Society >Controlled electrochemical functionalization of CNT fibers: Structure-chemistry relations and application in current collector-free all-solid supercapacitors
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Controlled electrochemical functionalization of CNT fibers: Structure-chemistry relations and application in current collector-free all-solid supercapacitors

机译:CNT纤维的控制电化学官能化:结构 - 化学关系与在无固体固体超级电容器中的应用

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Chemical functionalization of nanocarbons is an important strategy to produce electrochemical systems with higher energy/power density by generating surface functional groups with additional faradaic contribution, by increasing their surface area and correspondent capacitive contribution and by improving compatibility with aqueous electrolytes and other active materials, such as pseudocapacitive metal-oxides. Here we present an electrochemical method to simultaneously swell and functionalize large electrodes consisting of fabrics of macroscopic fibers of carbon nanotubes that renders the material hydrophilic and produces a substantial increase of specific capacitance and energy density in aqueous electrolytes. Through in-depth characterization of the carbon nanotube fibres (CNTF) by Raman spectroscopy, transmission electron microscopy, X-ray photoelectrocn spectroscopy (XPS) and small-angle X-ray scattering (SAXS) we identify various contributions to such improvements, including surface oxidation, tubular unzipping, debundling and inter-bundle swelling. Changes in hydrophilicity of functionalized CNTF are determined by analyzing the dynamics of spreading of polar and nonpolar liquids in the electrodes. The extracted contact angles and polar and dispersive surface energy components for different treatment conditions are in agreement with changes in dipole-moment obtained by XPS. Finally, functionalized CNTF electrodes were employed in current collector-free solid flexible super-capacitors, which show enhanced electrochemical properties compared to as-produced hydrophobic ones. (C) 2018 Elsevier Ltd. All rights reserved.
机译:纳米碳的化学官能化是通过增加其表面积和对应的电容贡献,通过提高与含水电解质和其他活性材料的相容性,产生具有较高能量/功率密度的电化学系统的重要策略。作为假偶联金属氧化物。在这里,我们提出了一种电化学方法,同时溶胀和官能化由碳纳米管的宏观纤维的织物构成的大电极,使得材料亲水性并产生在水性电解质中的特定电容和能量密度的显着增加。通过拉曼光谱,透射电子显微镜,X射线光电体光谱(XPS)和小角X射线散射(萨克斯)的深入表征碳纳米管纤维(CNTF),我们确定了对这种改进的各种贡献,包括表面氧化,管状解压缩,解压缩和束间肿胀。通过分析电极中极性和非极性液体的扩散的动态来确定官能化CNTF的亲水性的变化。用于不同处理条件的提取的接触角和极性和分散表面能量与XPS获得的偶极矩的变化一致。最后,采用官能化的CNTF电极,其在集聚物的固体柔性超电容器中,其显示与制备的疏水性相比增强的电化学性质。 (c)2018年elestvier有限公司保留所有权利。

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