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PEPICO 揭示了三种甲氧基苯酚异构体的催化快速热解机制。

PEPICO unveils the catalytic fast pyrolysis mechanism of the three methoxyphenol isomers.

机构信息

Paul Scherrer Institute, 5232 Villigen, Switzerland.

Institute for Chemical and Bioengineering, Department of Chemistry and Applied Biosciences, ETH Zurich, 8093 Zurich, Switzerland.

出版信息

Phys Chem Chem Phys. 2022 Sep 21;24(36):21786-21793. doi: 10.1039/d2cp02741k.

Abstract

The development of lignin valorization processes such as catalytic fast pyrolysis (CFP) to produce fine chemicals and fuels leads to a more sustainable future. The implementation of CFP is enabled by understanding the chemistry of lignin constituents, which, however, requires thorough mechanistic investigations by detecting reactive species. In this contribution, we investigate the CFP of the three methoxyphenol (MP) isomers over H-ZSM-5 utilizing vacuum ultraviolet synchrotron radiation and photoelectron photoion coincidence (PEPICO) spectroscopy. All isomers demethylate at first to yield benzenediols, from which dehydroxylation reactions proceed to produce phenol and benzene. Additional pathways to form benzene proceed over cyclopentadiene, methylcyclopentadiene, and fulvene intermediates. The detection of trace amounts of methanol in the product stream suggests a demethoxylation reaction to yield phenol. Guaiacol (2- or -MP) exhibits slightly higher reactivity compared to 3-MP and 4-MP, due to the formation of the fulvenone ketene, which opens additional routes to benzene and phenol. When compared to benzenediol catalytic pyrolysis, the additional methyl group in MP leads to high conversion at lower reactor temperatures, which is mostly owed to the lower HC-O H-O bond energy and the possibility to demethoxylate to produce phenol.

摘要

木质素增值过程的发展,如催化快速热解(CFP)以生产精细化学品和燃料,将导致更可持续的未来。通过了解木质素成分的化学性质,可以实现 CFP 的实施,然而,这需要通过检测反应性物种进行彻底的机理研究。在本研究中,我们利用真空紫外同步辐射和光电离光电子符合(PEPICO)光谱法研究了三种甲氧基苯酚(MP)异构体在 H-ZSM-5 上的 CFP。所有异构体首先脱甲基生成苯二酚,然后通过脱羟基反应生成苯酚和苯。形成苯的其他途径是通过环戊二烯、甲基环戊二烯和富烯中间体进行的。产物流中痕量甲醇的检测表明存在脱甲氧基反应生成苯酚。与 3-MP 和 4-MP 相比,愈创木酚(2-或 -MP)的反应性略高,这是由于富烯酮的形成,这为苯和苯酚的生成开辟了额外的途径。与苯二酚催化热解相比,MP 中的额外甲基基团导致在较低的反应器温度下具有较高的转化率,这主要归因于较低的 HC-O H-O 键能以及可以脱甲氧基生成苯酚的可能性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8ccd/9491049/7ae9ea6981b6/d2cp02741k-f1.jpg

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