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Kinetically driven graphite-like to diamond-like carbon transformation in low temperature laminar diffusion flames

机译:在低温层状扩散火焰中动力学地驱动的石墨料到金刚石状碳变换

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摘要

Historically, the synthesis of diamond and graphite via combustion flames stands out as a simplified, scalable and inexpensive approach. Unfortunately, this method is not beneficial for industrial applications in coatings due to limitations related with the high flame and substrate temperatures. Here, we report novel findings about the formation mechanism of graphite-like and diamond-like supported nanostructures in low temperature laminar diffusion flames. Both materials are formed upon controllable combustion at atmospheric pressure of a cylindrical paper wick immersed in rapeseed oil. An accurate adjustment of the incident air flow and the amount of available fuel allow deposition of carbon soot or diamond-like carbon (DLC). The DLC formation is favorable in a narrow stoichiometric range at flame temperatures within similar to 210-260 degrees C and beyond this range the particles precipitate as soot. The comparative structural analysis using scanning electron microscopy, Raman spectroscopy, X-ray photoelectron spectroscopy and transmission electron microscopy, along with the full thermal and stoichiometric profiles for the chosen combustion conditions, suggest a kinetically driven graphite-to-diamond transformation rather than a thermodynamically induced phase transition. Our results reveal a new direction in the principles of graphite and diamond formation in flames that could be applied to surmount the existing shortcomings in flame synthesis. (C) 2017 Elsevier B.V. All rights reserved.
机译:从历史上看,通过燃烧火焰合成金刚石和石墨是一种简单、可扩展且廉价的方法。不幸的是,由于火焰和基体温度较高的限制,这种方法不适用于涂料的工业应用。在这里,我们报告了在低温层流扩散火焰中类石墨和类金刚石支撑纳米结构形成机制的新发现。这两种材料都是由浸在菜籽油中的圆柱形纸芯在大气压下可控燃烧形成的。准确调整入射空气流量和可用燃油量,可以沉积碳烟或类金刚石碳(DLC)。在类似210-260℃的火焰温度下,在狭窄的化学计量范围内,DLC的形成是有利的,超过该范围,颗粒会沉淀为烟尘。使用扫描电子显微镜、拉曼光谱、X射线光电子能谱和透射电子显微镜进行的比较结构分析,以及所选燃烧条件下的完整热和化学计量曲线,表明是由动力学驱动的石墨-金刚石转变,而不是热力学诱导的相变。我们的结果揭示了火焰中石墨和金刚石形成原理的一个新方向,可用于克服火焰合成中存在的缺点。(C) 2017爱思唯尔B.V.版权所有。

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