Injongkol Yuwanda, Maihom Thana, Treesukul Piti, Sirijaraensre Jakkapan, Boekfa Bundet, Limtrakul Jumras
Department of Chemistry, Faculty of Liberal Arts and Science, Kasetsart University, Kamphaeng Saen Campus, Nakhon Pathom 73140, Thailand.
Phys Chem Chem Phys. 2017 Sep 13;19(35):24042-24048. doi: 10.1039/c7cp04229a.
Furfural acquired from agricultural sources is receiving extensive attention in the petrochemical industry as it offers an alternative route to generate more valuable hydrocarbon compounds. Herein, we investigate the furfural hydrogenation to furfuryl alcohol catalyzed by Lewis acidic BEA zeolites at the molecular level by means of the M06-L density functional theory. The mechanistic pictures in the catalytic procedure are revealed. The possible reaction pathways are considered to proceed via either concerted or stepwise mechanisms. With the contribution of zeolite oxygen bridging for the H-H splitting, the rate determining step activation barrier for the stepwise mechanism is 14.7 kcal mol lower than that for the concerted mechanism. The stepwise reaction therefore seems to be favored compared to the concerted one. The catalytic effect of the defect zeolite framework on the stepwise mechanism is also investigated. The activation energy for the stepwise rate-determining step over this site is significantly lower than the corresponding step over the perfect one by 14.1 kcal mol. Finally, the catalytic activity of tetravalent metal centers (Sn, Ge, Zr and Hf) substituted in BEA is also preliminarily compared and it is found to follow the order of Hf > Zr > Sn > Ge based on activation energies and the reaction rate. The difference in the activation energy can be traced back to the difference in the charge transfer from the catalytic site to the adsorbed molecules.
从农业来源获取的糠醛在石化行业正受到广泛关注,因为它提供了一条生成更有价值碳氢化合物的替代途径。在此,我们借助M06-L密度泛函理论在分子水平上研究了路易斯酸性BEA沸石催化糠醛加氢制糠醇的过程。揭示了催化过程中的机理图。可能的反应途径被认为是通过协同或分步机理进行的。由于沸石氧桥对H-H分裂的贡献,分步机理的速率决定步骤活化能比协同机理低14.7 kcal/mol。因此,与协同反应相比,分步反应似乎更有利。还研究了缺陷沸石骨架对分步机理的催化作用。该位点上分步速率决定步骤的活化能比完美位点上相应步骤的活化能低14.1 kcal/mol。最后,还初步比较了BEA中取代的四价金属中心(Sn、Ge、Zr和Hf)的催化活性,基于活化能和反应速率发现其顺序为Hf > Zr > Sn > Ge。活化能的差异可追溯到催化位点向吸附分子的电荷转移差异。