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首页> 外文期刊>Journal of Materials Science >Tuning the nitrogen content and surface properties of nitrogen-doped carbon nanotubes synthesized using a nitrogen-containing ferrocenyl derivative and ethylbenzoate
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Tuning the nitrogen content and surface properties of nitrogen-doped carbon nanotubes synthesized using a nitrogen-containing ferrocenyl derivative and ethylbenzoate

机译:调整使用含氮二茂铁衍生物和苯甲酸乙酯合成的掺氮碳纳米管的氮含量和表面性能

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摘要

Aligned nitrogen-doped carbon nanotubes (N-CNTs) containing 6.4–15.7 wt% of nitrogen were synthesized by pyrolysis of 3-ferrocenyl-2-(4-cyanophenyl)acrylonitrile as the catalyst in either acetonitrile or a solution of acetonitrile and ethylbenzoate. For comparison, N-CNTs were synthesized by pyrolysis of 3-ferrocenyl-2-(4-cyanophenyl)acrylonitrile in toluene. The effect of oxygen and the carbon source used during synthesis was investigated. The use of 3-ferrocenyl-2-(4-cyanophenyl)acrylonitrile in acetonitrile as a nitrogen and carbon source selectively yielded mainly N-CNTs, while use of toluene as a carbon source yielded both N-CNTs and carbon spheres. Elemental analysis of the N-CNTs synthesized using both acetonitrile and ethylbenzoate (source of oxygen) indicated that addition of oxygen enhanced the nitrogen content of N-CNTs. This was further supported by results from Raman spectroscopy, X-ray diffraction (XRD), Fourier transform infrared spectroscopy and inverse gas chromatography surface energy analysis. The higher nitrogen-containing N-CNTs were less graphitic and showed a higher base constant (Kb) compared to N-CNTs synthesized without oxygen. Analysis of transmission electron microscopy images showed that the outer diameters of the N-CNTs decreased upon increasing the oxygen composition by mass in the synthesis precursors from 1 to 4 wt% oxygen, the oxygen was derived from ethylbenzoate. In addition, the scanning electron microscopy and XRD revealed that the alignment of N-CNTs increased upon addition of oxygen. Electrical conductivity measurements of N-CNTs showed a negative relationship between the amount of oxygen in the starting materials and the conductivity of N-CNTs.
机译:通过将3-二茂铁基-2-(4-氰基苯基)丙烯腈作为催化剂在乙腈或乙腈和苯甲酸乙酯溶液中进行热解合成了含有6.4-15.7 wt%的氮的取向氮掺杂碳纳米管(N-CNT)。为了比较,通过在甲苯中热解3-二茂铁基-2-(4-氰基苯基)丙烯腈来合成N-CNT。研究了氧气和碳源在合成过程中的作用。在乙腈中使用3-二茂铁基-2-(4-氰基苯基)丙烯腈作为氮和碳源可以选择性地主要生成N-CNT,而使用甲苯作为碳源可以同时生成N-CNT和碳球。对同时使用乙腈和苯甲酸乙酯(氧气源)合成的N-CNT的元素分析表明,添加氧气可以提高N-CNT的氮含量。拉曼光谱,X射线衍射(XRD),傅立叶变换红外光谱和逆气相色谱表面能分析的结果进一步证明了这一点。与不含氧的N-CNT相比,含氮较高的N-CNT石墨较少,并且显示出较高的碱常数(Kb)。透射电子显微镜图像的分析表明,随着合成前体中的氧气质量按质量计从1-4%(重量)增加,N-CNT的外径减小,该氧气来自苯甲酸乙酯。另外,扫描电子显微镜和XRD显示,N-CNT的排列在添加氧气时增加。 N-CNT的电导率测量结果显示,起始材料中的氧含量与N-CNT的电导率呈负相关。

著录项

  • 来源
    《Journal of Materials Science》 |2015年第3期|1187-1200|共14页
  • 作者单位

    School of Chemistry and Physics University of KwaZulu-Natal">(1);

    School of Chemistry and Physics University of KwaZulu-Natal">(1);

    School of Chemistry and Physics University of KwaZulu-Natal">(1);

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