优化二氧化碳合成甲醇:块状六方氧化铟结构优于立方氧化铟结构吗?

IF 5.2 2区 化学 Q1 CHEMISTRY, APPLIED
Luís Felipe Bordini , Camila Palombo Ferraz , Aryane Tofanello , Marco Aurélio Suller Garcia , João Monnerat Araújo Ribeiro de Almeida , Eduardo Falabella Sousa-Aguiar , Pedro Nothaft Romano
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引用次数: 0

摘要

最近,基于块状氧化铟(In2O3)的催化剂被用于二氧化碳的加氢;然而,一些研究将晶体相与性能联系起来,而没有考虑反应过程中可能发生的变化。在这种情况下,我们研究了块状 In2O3 在二氧化碳加氢过程中的不同晶相(纯立方、六方或混合相),观察到催化活性的变化与反应条件下发生的相变有关。我们系统地比较了反应前后的晶体相和表面积,结果表明,在 350°C 时,与最初的 In2O3 结构无关,形成立方相的趋势伴随着表面积的损失。为了获得这些结果,我们采用了各种合成方法,通过调整结构和质地特性来实现所需的特性;我们首次采用微波辅助方法,在 3 小时的合成时间内获得了立方主要混合相 In2O3 结构。这种材料具有最佳的甲醇生产率。因此,我们的研究结果表明,在这种温度下利用块状六方 In2O3 可能并不有趣,而且更高的表面积也不一定能提高转化率。我们还进行了 XPS、XRD、EPR、MEV、N2 物理吸附、CO2-TPD 和 H2-TPR,这些都证实了我们的研究结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimizing methanol synthesis from CO2: Are bulk hexagonal indium oxide structures superior to cubic ones?

Recently, catalysts based on bulk indium oxide (In2O3) have been used in CO2 valorization; however, several studies correlate crystal phase with performance without considering possible changes during the reaction. In this context, we investigated different crystal phases of bulk In2O3 (pure cubic, hexagonal, or mixed-phased) in CO2 hydrogenation, where we observed variations in catalytic activity associated with phase transitions occurring under reaction conditions. We systematically compared the crystal phase and surface area before and after the reaction, showing that, at 350°C, independent from the initial In2O3 structure, there is a tendency to form the cubic phase accompanied by the loss of surface area. To reach these results, we employed various synthetic methods that tailored structural and textural characteristics to achieve desired properties; for the first time, we obtained a cubic major mixed-phase In2O3 structure at a 3-hour synthesis time by using a microwave-assisted method. Such material presented the best methanol productivity. Thus, as not previously reported, our results revealed that utilizing bulk hexagonal In2O3 may not be interesting under this temperature; also, a higher surface area does not necessarily provide improved conversion rates. XPS, XRD, EPR, MEV, N2 physisorption, CO2-TPD, and H2-TPR were performed and corroborated our investigations.

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来源期刊
Catalysis Today
Catalysis Today 化学-工程:化工
CiteScore
11.50
自引率
3.80%
发文量
573
审稿时长
2.9 months
期刊介绍: Catalysis Today focuses on the rapid publication of original invited papers devoted to currently important topics in catalysis and related subjects. The journal only publishes special issues (Proposing a Catalysis Today Special Issue), each of which is supervised by Guest Editors who recruit individual papers and oversee the peer review process. Catalysis Today offers researchers in the field of catalysis in-depth overviews of topical issues. Both fundamental and applied aspects of catalysis are covered. Subjects such as catalysis of immobilized organometallic and biocatalytic systems are welcome. Subjects related to catalysis such as experimental techniques, adsorption, process technology, synthesis, in situ characterization, computational, theoretical modeling, imaging and others are included if there is a clear relationship to catalysis.
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