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Industrially scalable process to separate catalyst substrate materials from MWNTs synthesised by fluidised-bed CVD on iron/alumina catalysts

机译:工业上可扩展的工艺,用于从铁/氧化铝催化剂上的流化床CVD合成的MWNT中分离出催化剂底物材料

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A multi-step purification process to separate metal catalysts and their support materials from mixtures of straight and spiral multi-walled carbon nanotubes (MWNTs), synthesised via fluidised-bed chemical vapour deposition (CVD) is described. The process involves: (i) refluxing as-synthesised bed materials (iron and non-porous alumina supports coated with carbon nanotubes (CNTs) and amorphous carbon) in either HNO_3, HNO_3/H_2SO_4 (v/v=1:3) or H_2SO_4 at each mixture's boiling point for 3, 6 or 12 h, (ii) filtering these samples using a two-stage (2.7 and 0.5 μm) filtration system, (iii) air drying and (iv) temperature selective, gas-phase oxidation in air to remove amorphous carbon. Both low and high purity as-synthesised bed materials (1.7 and 26.3 wt% CNTs, respectively) were used to investigate the process efficiency. Collectively these four steps were successful in removing amorphous carbon, metal catalysts and their alumina supports from the CNTs, improving the CNT purity from 1.7 wt% in the low purity as-synthesised samples to a maximum of 40.0 wt% and from 26.3 wt% in the higher purity feedstocks to 92.9 wt%. In both cases the remaining impurity was unseparated alumina, which remained bound to the CNTs even after treatment with concentrated acids for 12 h. The process has two potential advantages related to the development of large-scale CNT technologies: (i) the use of hydrofluoric acid, which is expensive and unsafe to use in large quantities has been avoided and (ii) the process is inherently scaleable and uses standard process engineering equipment suitable for large-scale CNT purification.
机译:描述了一种通过流化床化学气相沉积(CVD)合成的方法,将金属催化剂及其载体材料从直形和螺旋形多壁碳纳米管(MWNT)的混合物中分离出来的多步纯化工艺。该过程涉及:(i)在HNO_3,HNO_3 / H_2SO_4(v / v = 1:3)或H_2SO_4中回流合成床材料(涂覆有碳纳米管(CNT)和无定形碳的铁和无孔氧化铝载体)在每种混合物的沸点3、6或12 h时,(ii)使用两阶段(2.7和0.5μm)过滤系统过滤这些样品,(iii)空气干燥和(iv)温度选择性气相氧化空气以除去无定形碳。低纯度和高纯度合成床材料(分别为1.7和26.3 wt%的CNT)均用于研究工艺效率。这四个步骤共同成功地从CNT中去除了无定形碳,金属催化剂及其氧化铝载体,将CNT的纯度从合成后的低纯度样品中的1.7 wt%提高到了最大40.0 wt%,并将最大纯度从26.3 wt%提高到了26.3 wt%。较高纯度的原料达到92.9重量%。在这两种情况下,剩余的杂质都是未分离的氧化铝,即使用浓酸处理了12小时后也仍与CNT结合。该方法具有与大规模CNT技术的发展相关的两个潜在优势:(i)避免了氢氟酸的使用,氢氟酸价格昂贵且不能安全大量使用;(ii)该方法具有固有的规模可扩展性和用途适用于大规模CNT纯化的标准工艺工程设备。

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