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Synthesis of Millimeter-Scale Carbon Nanotube Arrays and Their Applications on Electrochemical Supercapacitors.

机译:毫米级碳纳米管阵列的合成及其在电化学超级电容器中的应用。

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摘要

This research is aimed at synthesizing millimeter-scale carbon nanotube arrays (CNTA) by conventional chemical vapor deposition (CCVD) and water-assisted chemical vapor deposition (WACVD) methods, and exploring their application as catalyst supports for electrochemical supercapacitors.;Mn3O4 nanoparticles were successfully deposited and uniformly distributed within millimeter-long CNTAs by dip-casting method from non-aqueous solutions. After modification with Mn3O4 nanoparticles, CNTAs have been changed from hydrophobic to hydrophilic without their alignment and integrity being destroyed. The hydrophilic Mn 3O4/CNTA composite electrodes present ideal capacitive behavior with high reversibility. This opens up a new route of utilizing ultra-long CNTAs, based on which a scalable and cost-effective method was developed to fabricate composite electrodes using millimeter-long CNTAs. To improve the performance of the composites, epsilon-MnO2 nanorods were anodically pulse-electrodeposited within hydrophilic 0.5 mm-thick Mn 3O4 decorated CNTAs. The maximum gravimetric capacitance for the MnO2 nanorods/CNTA composite electrode was found to be 185 F/g, and that for epsilon-MnO2 nanorods was determined to be 221 F/g. After electrodeposition, the area-normalized capacitance and volumetric capacitance values were increased by a factor of 3, and an extremely high area-normalized capacitance of 1.80 F/cm2 was also achieved for the MnO2 nanorods/CNTA composite.;The growth mechanism and growth kinetics of CNTA under different conditions were systematically investigated to understand the relationship among physical characteristics of catalyst particles, growth parameters, and carbon nanotube (CNT) structures within CNTAs. Multiwalled CNT (MWCNT) array growth demonstrates lengthening and thickening stages in CCVD and WACVD. In CCVD, the lengthening and thickening were found to be competitive. By investigating catalyst particles after different pretreatment conditions, it has been found that inter-particle spacing plays a significant role in influencing CNTA height, CNT diameter and wall number. In WACVD, a long linear lengthening stage has been found. CNT wall number remains constant and catalysts preserve the activity in this stage, while MWCNTs thicken substantially and catalysts deactivate following the previously proposed radioactive decay model in the thickening stage of WACVD. Water was also shown to preserve the catalyst activity by significantly inhibiting catalyst-induced and gas phase-induced thickening processes in WACVD.
机译:这项研究旨在通过常规化学气相沉积(CCVD)和水辅助化学气相沉积(WACVD)方法合成毫米级碳纳米管阵列(CNTA),并探索其作为电化学超级电容器的催化剂载体的应用。通过从非水溶液浸铸法成功沉积并均匀分布在毫米长的CNTA中。用Mn3O4纳米粒子改性后,CNTA已从疏水性变为亲水性,而不会破坏其排列和完整性。亲水性Mn 3O4 / CNTA复合电极表现出理想的电容性和高可逆性。这开辟了利用超长CNTA的新途径,在此基础上,开发了一种可扩展且经济高效的方法来使用毫米长的CNTA制造复合电极。为了提高复合材料的性能,将ε-MnO2纳米棒阳极脉冲电沉积在亲水性0.5 mm厚的Mn 3O4装饰的CNTA中。 MnO2纳米棒/ CNTA复合电极的最大重量电容为185 F / g,ε-MnO2纳米棒的最大电容为221 F / g。电沉积后,面积归一化电容和体积电容值增加了3倍,MnO2纳米棒/ CNTA复合材料还获得了1.80 F / cm2的极高面积归一化电容。;生长机理和生长系统研究了在不同条件下CNTA的动力学,以了解CNTA中催化剂颗粒的物理特征,生长参数和碳纳米管(CNT)结构之间的关系。多壁CNT(MWCNT)阵列的生长表明在CCVD和WACVD中有延长和增稠阶段。在CCVD中,发现延长和增厚具有竞争力。通过研究不同预处理条件后的催化剂颗粒,发现颗粒间间距在影响CNTA高度,CNT直径和壁数方面起着重要作用。在WACVD中,发现了长的线性延长阶段。在此阶段,CNT壁数保持不变,催化剂保持活性,而MWCNT基本上增稠,而催化剂遵循先前提出的WACVD增稠阶段的放射性衰变模型而失活。还显示出水通过显着抑制WACVD中催化剂诱导的和气相诱导的增稠过程来保留催化剂活性。

著录项

  • 作者

    Cui, Xinwei.;

  • 作者单位

    University of Alberta (Canada).;

  • 授予单位 University of Alberta (Canada).;
  • 学科 Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 269 p.
  • 总页数 269
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 老年病学;
  • 关键词

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