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三氟甲醇分解的能量学与机理

Energetics and mechanism of the decomposition of trifluoromethanol.

作者信息

Nguyen Minh Tho, Matus Myrna H, Vu Thi Ngan, Haiges Ralf, Christe Karl O, Dixon David A

机构信息

Department of Chemistry, The University of Alabama, Shelby Hall, Tuscaloosa, Alabama 35487-0336, USA.

出版信息

J Phys Chem A. 2008 Feb 14;112(6):1298-312. doi: 10.1021/jp709796n. Epub 2008 Jan 19.

DOI:10.1021/jp709796n
PMID:18205340
Abstract

The thermal instability of alpha-fluoroalcohols is generally attributed to a unimolecular 1,2-elimination of HF, but the barrier to intramolecular HF elimination from CF3OH is predicted to be 45.1 +/- 2 kcal/mol. The thermochemical parameters of trifluoromethanol were calculated using coupled-cluster theory (CCSD(T)) extrapolated to the complete basis set limit. High barriers of 42.9, 43.1, and 45.0 kcal/mol were predicted for the unimolecular decompositions of CH2FOH, CHF2OH, and CF3OH, respectively. These barriers are lowered substantially if cyclic H-bonded dimers of CF3OH with complexation energies of approximately 5 kcal/mol are involved. A six-membered ring dimer has an energy barrier of 28.7 kcal/mol and an eight-membered dimer has an energy barrier of 32.9 kcal/mol. Complexes of CF3OH with HF lead to strong H-bonded dimers, trimers and tetramers with complexation energies of approximately 6, 11, and 16 kcal/mol, respectively. The dimer, CH3OH:HF, and the trimers, CF3OH:2HF and (CH3OH)2:HF, have decomposition energy barriers of 26.7, 20.3, and 22.8 kcal/mol, respectively. The tetramer (CH3OH:HF)2 gives rise to elimination of two HF molecules with a barrier of 32.5 kcal/mol. Either CF3OH or HF can act as catalysts for HF-elimination via an H-transfer relay. Because HF is one of the decomposition products, the decomposition reactions become autocatalytic. If the energies due to complexation for the CF3OH-HF adducts are not dissipated, the effective barriers to HF elimination are lowered from approximately 20 to approximately 9 kcal/mol, which reconciles the computational results with the experimentally observed stabilities.

摘要

α-氟代醇的热不稳定性通常归因于HF的单分子1,2-消除反应,但从CF3OH进行分子内HF消除的势垒预计为45.1±2千卡/摩尔。使用外推至完全基组极限的耦合簇理论(CCSD(T))计算了三氟甲醇的热化学参数。预计CH2FOH、CHF2OH和CF3OH单分子分解的势垒分别为42.9、43.1和45.0千卡/摩尔。如果涉及络合能约为5千卡/摩尔的CF3OH环状氢键二聚体,则这些势垒会大幅降低。六元环二聚体的能垒为28.7千卡/摩尔,八元环二聚体的能垒为32.9千卡/摩尔。CF3OH与HF的络合物会形成强氢键二聚体、三聚体和四聚体,其络合能分别约为6、11和16千卡/摩尔。二聚体CH3OH:HF以及三聚体CF3OH:2HF和(CH3OH)2:HF的分解能垒分别为26.7、20.3和22.8千卡/摩尔。四聚体(CH3OH:HF)2消除两个HF分子的势垒为32.5千卡/摩尔。CF3OH或HF均可通过氢转移中继作用作为HF消除反应的催化剂。由于HF是分解产物之一,分解反应变为自催化反应。如果CF3OH-HF加合物的络合能没有消散,则HF消除的有效势垒从约20千卡/摩尔降低至约9千卡/摩尔,这使得计算结果与实验观察到的稳定性相符。

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