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钼和硫化钨簇上呋喃及2-甲基呋喃加氢脱氧的量子力学研究

Quantum mechanistic study of furan and 2-methylfuran hydrodeoxygenation on molybdenum and tungsten sulfide clusters.

作者信息

Kanhounnon Wilfried G, Kuevi Urbain A, Kpotin Gaston A, Koudjina Simplice, Houngue Alice Kpota, Atohoun Guy Y S, Mensah Jean-Baptiste, Badawi Michael

机构信息

Laboratoire de Chimie Théorique et de Spectroscopie Moléculaire (LACTHESMO), Université d'Abomey-Calavi, Cotonou, Bénin.

Laboratoire Physique et Chimie Théoriques UMR 7019 CNRS- Université de Lorraine, Nancy, France.

出版信息

J Mol Model. 2019 Jul 22;25(8):237. doi: 10.1007/s00894-019-4086-4.

Abstract

One of the possibilities of limiting carbon dioxide emissions is to use pyrolysis oils from biomass. However, their very high oxygen content confers to these oils a chemical instability and a high viscosity. Among the oxygen-containing compounds present in bio-oils, furanic compounds derived from the decomposition of cellulosic and hemi-cellulosic biomass are the most refractory to deoxygenation. The major products of their hydrodeoxygenation are alkanes and secondly alkenes, but the intermediates are still subject to controversy. In this work, we performed a DFT simulation of the hydrodeoxygenation of furan (CHO) and 2-methylfuran in the presence of molybdenum and tungsten sulphide Mo(W)S The aim of this work is to elucidate the reaction intermediates and to compare the activities of the two catalytic sites used in our reaction conditions. Our calculations show that the partial hydrogenation of the two molecules occurs preferentially in position (2,5). The hydrogenolysis reactions of the C-O bonds occur in two steps. The molybdenum sulphide exhibits higher catalytic activity.

摘要

限制二氧化碳排放的一种可能性是使用来自生物质的热解油。然而,它们极高的氧含量赋予了这些油化学不稳定性和高粘度。在生物油中存在的含氧化合物中,源自纤维素和半纤维素生物质分解的呋喃类化合物最难脱氧。它们加氢脱氧的主要产物是烷烃,其次是烯烃,但中间产物仍存在争议。在这项工作中,我们在硫化钼和硫化钨Mo(W)S存在的情况下对呋喃(CHO)和2-甲基呋喃的加氢脱氧进行了密度泛函理论(DFT)模拟。这项工作的目的是阐明反应中间体,并比较在我们的反应条件下使用的两个催化位点的活性。我们的计算表明,这两种分子的部分氢化优先发生在(2,5)位。C-O键的氢解反应分两步进行。硫化钼表现出更高的催化活性。

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