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Graphitization of nanocrystalline carbon microcoils synthesized by catalytic chemical vapor deposition

机译:催化化学气相沉积法合成纳米晶碳微线圈的石墨化

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摘要

Graphitization, a common process involving the transformation of metastable nongraphitic carbon into graphite is one of the major present-day challenges for micro- and nanocarbons due to their unique structural character and highly unusual thermal activation. Here we report on the successful graphitization of nanocrystalline carbon microcoils prepared by catalytic chemical vapor deposition and post-treated in argon atmosphere at temperatures ∼2500 °C for 2 h. The morphology, microstructure, and thermal properties of the carbon microcoils are examined in detail. The graphitization mechanism is discussed by invoking a model of structural transformation of the carbon microcoils. The results reveal that after graphitization the carbon microcoils are prominently purified and feature a clear helical morphology, as well as a more regular and ordered microstructure. The interlayer spacing of the carbon microcoils decreases from 0.36 to 0.34 nm, whereas the mean crystal sizes in the c - and a -directions increase from 1.64 to 2.04 nm and from 3.86 to 7.21 nm, respectively. Thermal treatment also substantially improves the antioxidation properties of the microcoils by lifting the oxidation onset temperature from 550 to 672 °C. This process may be suitable for other nongraphitic micro- and nanomaterials.
机译:石墨化是涉及亚稳态非石墨碳向石墨转化的常见过程,由于其独特的结构特征和极不寻常的热活化作用,是当今微碳和纳米碳面临的主要挑战之一。在这里,我们报道了通过催化化学气相沉积制备的纳米晶碳微线圈的成功石墨化,并在氩气中于约2500°C的温度下进行了2小时的后处理。详细检查了碳微线圈的形态,微观结构和热性能。通过调用碳微线圈的结构转变模型来讨论石墨化机理。结果表明,石墨化后,碳微线圈被显着纯化,并具有清晰的螺旋形形态,以及更规则和有序的微观结构。碳微线圈的层间距从0.36减小到0.34 nm,而c-和a-方向的平均晶体尺寸分别从1.64增大到2.04 nm和从3.86增大到7.21 nm。热处理还可以通过将氧化起始温度从550升高到672°C,从而大大改善微线圈的抗氧化性能。该方法可能适用于其他非石墨的微米和纳米材料。

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