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Quantum mechanical and reaction dynamics investigation of butyl acetate synthesis in the presence of pyridinium hydrogen sulfate

机译:量子机械和反应动力学研究乙酸丁酯合成在硫酸吡啶硫酸盐存在下

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The thermodynamic and kinetic aspects of the mechanism of butyl acetate synthesis catalyzed by the diprotic ionic liquid pyridinium hydrogen sulfate ([H-Pyr](+)[HSO4](-)) were investigated using density functional theory (DFT) at B3LYP/6-311 + G(d,p) level of calculation. Electronic structure and geometry for individual molecules (substrate, catalyst) were clarified using molecular electrostatic potential surface, natural bond orbital analysis and atoms in molecules theory. The DFT results elucidated the catalytic cycle, which involved the formation of a transition state via substrate-BAIL interaction. Hydrogen bond interactions were found to exist throughout the process of the catalytic cycle, which are of special importance for stabilizing the transition state. Thus, a mechanism involving cooperative hydrogen bonding for BAIL catalyzed butyl acetate synthesis was established. Based on the above mechanism, the calculated thermodynamic parameters were validated by the subsequent kinetic study. Such results may provide fundamental insights into the design of ionic liquid-based homogeneous catalysts for esters production. (C) 2019 Elsevier B.V. All rights reserved.
机译:使用B3LYP / 6的密度官能理论(DFT)研究了由Diprotic离子液吡啶硫酸氢硫酸氢硫酸氢硫酸氢硫酸氢硫酸氢硫酸氢硫酸氢硫酸氢硫酸氢硫酸氢([H-PYR](+)[HSO4]( - ))的热力学和动力学方面-311 + g(d,p)计算水平。使用分子理论中的分子静电潜力表面,天然键轨道分析和原子阐明单个分子(底物,催化剂)的电子结构和几何形状。 DFT结果阐明了催化循环,其涉及通过基材 - 砧座相互作用形成过渡状态。发现氢键相互作用存在于催化循环的整个过程中,这对于稳定过渡状态具有特殊重要性。因此,建立了一种涉及用于保释催化乙酸丁酯合成的协同氢键的机制。基于上述机制,随后的动力学研究验证了计算的热力学参数。这种结果可以为酯生产的离子液体基均相催化剂的设计提供基础见解。 (c)2019 Elsevier B.v.保留所有权利。

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