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High-performance gas-liquid-solid microreactor with polydopamine functionalized surface coated by Pd nanocatalyst for nitrobenzene hydrogenation

机译:钯纳米催化剂包覆聚多巴胺功能化表面的高性能气液固微反应器用于硝基苯加氢

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In this study, a gas-liquid-solid microreactor with the polydopamine functionalized surface coated by highly-active palladium nanocatalysts using the electroless deposition was successfully developed for hydrogenation of nitrobenzene. Experimental results showed that in the 40-h continuous operation, the developed microreactor exhibited rather high average nitrobenzene conversion more than 97% under various inlet nitrobenzene concentrations from 30 to 90 mM. Besides, the effect of the gas and liquid flow rates on the aniline concentration and nitrobenzene conversion was also studied. It was found that for a given liquid flow rate, the increase of the gas flow rate led to an increase in both the aniline concentration and nitrobenzene conversion as a result of more hydrogen supplied. Further increasing the gas flow rate caused no change of them due to excess supplied hydrogen. There existed a minimum gas flow rate to acquire the complete conversion of nitrobenzene. Similarly, for a given gas flow rate, increasing the liquid flow rate did not change the aniline concentration and nitrobenzene conversion due to sufficient supply of hydrogen. Once the supplied hydrogen became insufficient at high liquid flow rate, both the aniline concentration and nitrobenzene conversion were decreased. Based on these results, the excess ratios were achieved under different conditions. It was found that the excess ratio decreased with the increase of the liquid flow rate and inlet nitrobenzene concentration as a result of the enhanced mass transport. The obtained results in this work are beneficial for optimizing the gas-liquid-solid microreactor operation. (C) 2016 Elsevier B.V. All rights reserved.
机译:在这项研究中,成功​​开发了一种气-液-固微反应器,该化学反应器通过使用化学沉积的高活性钯纳米催化剂通过高活性钯纳米催化剂涂覆了聚多巴胺官能化表面,用于硝基苯的加氢。实验结果表明,在连续运行40小时的情况下,开发的微反应器在30至90 mM的各种进口硝基苯浓度下均显示出相当高的平均硝基苯转化率,超过97%。此外,还研究了气体和液体流速对苯胺浓度和硝基苯转化率的影响。已经发现,对于给定的液体流速,由于提供了更多的氢气,气体流速的增加导致苯胺浓度和硝基苯转化率的增加。气体流速的进一步增加不会由于供给的氢气过多而使它们发生变化。存在最小气体流速以获取硝基苯的完全转化。类似地,对于给定的气体流速,由于氢气的充足供应,增加液体流速不会改变苯胺浓度和硝基苯转化率。一旦供应的氢气在高液体流速下变得不足,苯胺浓度和硝基苯转化率都会降低。基于这些结果,在不同条件下实现了过量比率。发现由于增加的质量传递,过量比随着液体流速和入口硝基苯浓度的增加而降低。这项工作中获得的结果有利于优化气液固微反应器的运行。 (C)2016 Elsevier B.V.保留所有权利。

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