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糠醛到糠醇:Lewis 酸性 BEA 沸石上氢转移的计算研究及阳离子交换和四价金属取代的影响。

Furfural to Furfuryl Alcohol: Computational Study of the Hydrogen Transfer on Lewis Acidic BEA Zeolites and Effects of Cation Exchange and Tetravalent Metal Substitution.

机构信息

Department of Chemistry, Faculty of Liberal Arts and Science , Kasetsart University, Kamphaeng Saen Campus , Nakhon Pathom 73140 , Thailand.

Institute of Ion Physics and Applied Physics, University of Innsbruck , 6020 Innsbruck , Austria.

出版信息

Inorg Chem. 2018 Jun 4;57(11):6599-6605. doi: 10.1021/acs.inorgchem.8b00741. Epub 2018 May 16.

Abstract

The hydrogen transfer of furfural to furfuryl alcohol with i-propanol as the hydrogen source over cation-exchanged Lewis acidic BEA zeolite has been investigated by means of density functional calculations. The reaction proceeds in three steps. First the O-H bond of i-propanol is broken to form a propoxide intermediate. After that, the furylmethoxy intermediate is formed via hydrogen transfer process, and finally furylmethoxy abstracts the proton to form the furfuryl alcohol product. The second step is rate-determining by requiring the highest activation energy (23.8 kcal/mol) if the reaction takes place on Li-Sn-BEA zeolite. We find that the catalytic activity of various cation-exchanged Sn-BEA zeolites is in the order Li-Sn-BEA > Na-Sn-BEA > K-Sn-BEA. The lower activation energy for Li-Sn-BEA compared to Na-Sn-BEA and K-Sn-BEA can be explained by the larger charge transfer from the carbonyl bond to the catalyst, leading to its activation and to the attraction of the hydrogen being transferred. The larger charge transfer in turn is due to the smaller gap between the energies of furfural HOMO and the zeolite LUMO in Li-Sn-BEA, compared to both Na-Sn-BEA and K-Sn-BEA. In a similar way, we also compare the catalytic activity of tetravalent metal centers (Sn, Zr, and Hf) substituted into BEA and find in the order Zr ≥ Hf > Sn, based on activation energies. Finally we investigate statistically which property of the reactants is a suitable descriptor for an approximative prediction of the reaction rate in order to be able to quickly screen promising catalytic materials for this reaction.

摘要

以异丙醇作为氢源,通过密度泛函计算研究了阳离子交换Lewis 酸性 BEA 沸石中糠醛向糠醇的氢转移反应。该反应分三步进行。首先,异丙醇的 O-H 键断裂形成丙氧基中间体。之后,通过氢转移过程形成呋喃甲氧基中间体,最后呋喃甲氧基夺取质子生成糠醇产物。如果反应发生在 Li-Sn-BEA 沸石上,则第二步是速率决定步骤,需要最高的活化能(23.8 kcal/mol)。我们发现,各种阳离子交换 Sn-BEA 沸石的催化活性顺序为 Li-Sn-BEA > Na-Sn-BEA > K-Sn-BEA。与 Na-Sn-BEA 和 K-Sn-BEA 相比,Li-Sn-BEA 的活化能较低,可以解释为羰基键向催化剂的电荷转移较大,导致其活化并吸引转移的氢。较大的电荷转移反过来又归因于 Li-Sn-BEA 中糠醛 HOMO 和沸石 LUMO 之间的能量间隙小于 Na-Sn-BEA 和 K-Sn-BEA,从而导致了较大的电荷转移。类似地,我们还比较了四价金属中心(Sn、Zr 和 Hf)取代 BEA 的催化活性,根据活化能发现其活性顺序为 Zr≥Hf>Sn。最后,我们统计了反应物的哪些性质是反应速率近似预测的合适描述符,以便能够快速筛选出该反应有前途的催化材料。

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