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Chemical Imaging of Catalyst Deactivation during the Conversion of Renewables at the Single Particle Level: Etherification of Biomass-Based Polyols with Alkenes over H-Beta Zeolites

机译:可再生能源在单颗粒水平转化过程中催化剂失活的化学成像:H-Beta沸石与烯烃的生物质多元醇的醚化

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摘要

The etherification of biomass-based alcohols with various linear α-olefins under solvent-free conditions was followed in a space- and time-resolved manner on 9 μm large H-Beta zeolite crystals by confocal fluorescence microscopy. This allowed us to visualize the interaction with the substrate and distribution of the coke products into the catalyst at the level of an individual zeolite crystal during the etherification process. The spectroscopic information obtained on the micrometer-scale zeolite was in line with the results obtained with bulk characterization techniques and further confirmed by the catalytic results obtained both for micrometer-scale and nanoscale zeolites. This allowed us to explain the influence of the substrate type (glycerol, glycols, and alkenes) and zeolite properties (Si/Al ratio and particle size) on the etherification activity. The etherification of the biomass-based alcohols takes place mainly on the external surface of the zeolite particles. The gradual blockage of the external surface of the zeolite results in a partial or total loss of etherification activity. The deactivation could be attributed to olefin oligomerization. The high conversions obtained in the etherification of 1,2-propylene glycol with long linear alkenes (up to 80%) and the pronounced deactivation of the zeolite observed in the etherification of glycerol with long linear alkenes (max. 20% conversion) were explained by the spectroscopic measurements and is due to differences in the adsorption, i.e., in the center of the zeolite particle for glycerol and on the external surface in the case of glycols.
机译:通过共聚焦荧光显微镜,以空间和时间分辨的方式,在无溶剂条件下,将生物质基醇与各种线性α-烯烃进行醚化反应。这使我们能够在醚化过程中以单个沸石晶体的水平可视化与基材的相互作用以及焦炭产物在催化剂中的分布。在微米级沸石上获得的光谱信息与通过本体表征技术获得的结果一致,并且进一步由微米级和纳米级沸石获得的催化结果证实。这使我们能够解释底物类型(甘油,乙二醇和烯烃)和沸石性能(Si / Al比和粒径)对醚化活性的影响。基于生物质的醇的醚化主要发生在沸石颗粒的外表面上。沸石外表面的逐渐堵塞导致醚化活性的部分或全部丧失。失活可归因于烯烃低聚。解释了在1,2-丙二醇与长直链烯烃的醚化中获得的高转化率(最高80%)和在甘油与长直链烯烃的醚化中观察到的沸石的明显失活(最大转化率为20%)通过光谱测量,是由于吸附的差异,即在甘油的沸石颗粒的中心和在乙二醇的情况下在外表面。

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  • 来源
    《Journal of the American Chemical Society》 |2010年第30期|p.10429-10439|共11页
  • 作者

    Andrei N. Parvulescu;

  • 作者单位

    Inorganic Chemistry and Catalysis Group, Debye Institute for Nanomaterials Science, Utrecht University, Sorbonnelaan 16, 3508 TB Utrecht, The Netherlands, The National Institute of Materials Physics, Atomistilor Str. 105bis, PO Box MG. 7, 077125 Magurele-;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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