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Growth of carbon nanotubes at low powers by impedance-matched microwave plasma enhanced chemical vapor deposition method

机译:阻抗匹配的微波等离子体增强化学气相沉积法低功率生长碳纳米管

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摘要

A solo carbon nanotube (CNT) was successfully grown on nickel electrodes by a microwave plasma enhanced chemical vapor deposition (MPECVD) method equipped with an impedance-matched substrate holder with the reaction gases composed of hydrogen (H-2), carbon dioxide (CO2), and methane (CH4) mixtures. An introduction of carbon dioxide gas before CNTs growth, the substrate temperature can easily be reached above 610 degrees C even heated at a low microwave power. This can be enunciated from fact that carbon dioxide inherits with higher bond energy for molecular dissociation, lower thermal conductivity, and higher heat capacity in comparing to other gases. The electron field emissions for randomly aligned CNTs and well-aligned CNTs grown by MPECVD and by radio frequency assisted hot-filament methods, respectively, are measured and compared. The higher field emission characteristic of the randomly aligned CNTs is presumed to be due to the protruded CNTs, which inheriting with less screening effect and manifesting with defects are crucial to play the effective emission sites.
机译:通过微波等离子体增强化学气相沉积(MPECVD)方法在镍电极上成功地生长了碳纳米管(CNT),该方法配备了阻抗匹配的基板支架,反应气体由氢气(H-2),二氧化碳(CO2)组成)和甲烷(CH4)混合物。在碳纳米管生长之前引入二氧化碳气体,即使在低微波功率下加热,也可以轻松达到610摄氏度以上的基板温度。这可以从以下事实中阐明:与其他气体相比,二氧化碳以更高的键能进行分子解离,具有较低的热导率和较高的热容量。分别测量和比较了通过MPECVD和通过射频辅助热丝法生长的随机排列的CNT和排列良好的CNT的电子场发射。据推测,随机排列的CNT的场发射特性较高,是由于突出的CNT引起的,这些CNT具有较低的屏蔽效果,并且表现出缺陷对于发挥有效的发射位点至关重要。

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