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首页> 外文期刊>Catalysis science & technology >Fe@CNT-monoliths for the conversion of carbon dioxide to hydrocarbons: structural characterisation and Fischer-Tropsch reactivity investigations
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Fe@CNT-monoliths for the conversion of carbon dioxide to hydrocarbons: structural characterisation and Fischer-Tropsch reactivity investigations

机译:Fe@CNT-Monoliths用于将二氧化碳转化为碳氢化合物:结构表征和Fischer-Tropsch反应性研究

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摘要

The direct conversion of carbon dioxide to hydrocarbons with a high economic value, such as olefins, can contribute to preventing further green house gas emissions in the atmosphere, in this paper, we report a synthesis, characterisation and catalytic study centred on iron nanoparticle-carbon nanotube arrays grown on monoliths (Fe@CNT-m). These have been used for the catalytic conversion of carbon dioxide to hydrocarbons, showing superior properties than the powder form. The monolith-supported structure also overcomes limitations of the powder catalyst, such as high-pressure drops and potential toxicity of airborne CNT powders, that have, so-far, limited its use in industry. The optimal process conditions (temperature pressure, flow rate and reaction time) have been identified along with deactivation mechanisms. The different catalytic performance of the residual iron NPs outside and inside the.CNTs has also been investigated.
机译:将二氧化碳直接转化为具有较高经济价值的碳氢化合物,例如烯烃,可以防止大气中进一步的温室气体排放,在本文中,我们报告了一项以铁纳米粒子 - 碳碳酸铁含量为中心的合成,表征和催化性研究 纳米管阵列在整体上生长(Fe@cnt-M)。 这些已用于将二氧化碳催化转化为碳氢化合物,比粉末形式显示出优异的特性。 由粉末催化剂(例如高压液滴和机载CNT粉末的潜在毒性)的粉末催化剂的局限性也限制了其在工业中的使用,这还克服了粉末催化剂的限制。 最佳过程条件(温度压力,流速和反应时间)与失活机制一起被鉴定出来。 还研究了CNTS外部和内部残留的铁NP的不同催化性能。

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