首页> 外文期刊>Journal of the American Chemical Society >THEORETICAL INVESTIGATION OF COMPETING MECHANISMS IN THE THERMAL UNIMOLECULAR DECOMPOSITION OF ACETIC ACID AND THE HYDRATION REACTION OF KETENE
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THEORETICAL INVESTIGATION OF COMPETING MECHANISMS IN THE THERMAL UNIMOLECULAR DECOMPOSITION OF ACETIC ACID AND THE HYDRATION REACTION OF KETENE

机译:乙酸热单分子分解与酮的水合反应机理的理论研究

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摘要

We present ab initio multiconfiguration self consistent field calculations, using a polarized basis set, of equilibrium and transition-state structures relevant to the two competing mechanisms for the unimolecular decomposition of acetic acid. Single-point calculations using a modified Gaussian-2 method indicate that the lowest energy decomposition pathway for acetic acid is decarboxylation through a four-center transition state leading to methane and carbon dioxide, with a barrier of 71.8 kcal/mol. Dehydration, leading to ketene and water, has a calculated overall activation energy of 73.1 kcal/mol and occurs most easily through a two-step mechanism: 1,3 hydrogen migration to an enediol followed by elimination of water via a four-center transition state. The direct (one-step) dehydration of acetic acid has a calculated barrier of 76.4 kcal/mol. Transition state theory calculations indicate that all three decomposition routes are competitive at high temperatures: the predicted branching between decarboxylation, one-step dehydration, and two-step dehydration is 1.00:0.34:0.28 at 900 K and 1.00:1.11:0.31 at 1500 K. The hydration of ketene to acetic acid in the gas phase is predicted to occur competitively at high temperature by addition of water to the CO pi-bond followed by a 1,3 hydrogen migration and by one-step addition to the CC pi-bsnd. [References: 17]
机译:我们提出了使用极化基础集的,与乙酸的单分子分解的两种竞争机制相关的平衡态和过渡态结构的从头开始多构型自洽场计算。使用改进的高斯2方法进行的单点计算表明,乙酸的最低能量分解途径是通过四中心过渡态进行脱羧,生成甲烷和二氧化碳,势垒为71.8 kcal / mol。脱水导致乙烯酮和水,计算出的总活化能为73.1 kcal / mol,最容易通过两步机制发生:1,3氢迁移至烯二醇,然后通过四中心过渡态消除水。乙酸的直接(一步式)脱水计算得出的势垒为76.4 kcal / mol。过渡态理论计算表明,所有三种分解途径在高温下都是竞争性的:900 K时脱羧,一步脱水和两步脱水之间的预测支化为1.00:0.34:0.28,在1500 K时为1.00:1.11:0.31预计在高温下,通过向CO pi键中添加水,然后进行1,3氢迁移,并向CC pi-bs中一步添加,可以在高温下竞争性地发生乙烯酮水合为乙酸的水合反应。 。 [参考:17]

著录项

  • 来源
    《Journal of the American Chemical Society》 |1995年第18期|p. 5114-5119|共6页
  • 作者

    Duan XF.; Page M.;

  • 作者单位

    N DAKOTA STATE UNIV DEPT CHEM FARGO ND 58105 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

    Pyrolysis mechanisms;

    机译:热解机理;

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