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Multi-Structural and Multi-Path Variational Transtition State Theory. Application to Kinetics Studies of Hydrogen Transfer Reaction in Gas Phase.

机译:多结构和多路径变分过渡状态理论。在气相中氢转移反应动力学研究中的应用。

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摘要

To use computational methods to study the kinetics of combustion reaction of either alkanes or biofuels, two great challenge issues need to be addressed. The first one is the multi-structure effect, which makes the reactive potential energy surface complex, and requires considering multiple stationary states and multiple reaction paths to calculate the thermal rate. The second issue oringinates from torsional anharmonicity, which causes the harmonic oscillator approximation and normal mode analysis to fail and requires treating the torsions using different models in different temperature regimes. To treat the multi-structural and torsional anharmonicity correctly, we developed the internal-coordinate multi-structural approximation to calculate the partition functions for large molecules. This new method can predict more accurate partition functions for complex molecules in both the low and high temperature ranges. We also developed two new formulations of variational transtition state theory (VTST): multi-structure and multi-path VTST with multi-dimensional tunneling to calculate the thermal rates of hydrogen-transfer reactions in a broad temperature range. These formulations include both multi-structure and torsional anharmonicity effects and a more accurate means to evaluate vairational and tunneling effects using multiple reaction paths in the calculation. The thesis work is presented as four chapters, as follows:;Chapter one discusses the theory of the internal-coordinate multi-structural approximation, also called the multi-structure torsional (MS-T) approximation and its application to various molecules. Although this work was mainly contributed by J. Zheng and S. Mielke in our group, the author still would like to present this part in the thesis because this part is one of the fundamentals for the following chapters.;Chapter two investigates the thermodynamics properties of two complex molecules, n-hepane and isoheptane, using the MS-T method. The results were compared with experimental data from the API Tables and TRC data sets and with the empirical group additivity method, to further demonstrate the success of the MS-T approximation in calculating the partition functions of large molecules.;Chapter three focuses on presenting multi-structure variational transion state theory (MS-VTST) with torsional anhormicity, which includes both multi-structure and torsional anharmonicity effects for reactants, products, and transition states, but uses only the reaction path with the lowest vibrationally adiabatic ground-state potential energy barrier to calculate the variational and tunneling effects. To apply this theory, we studied the thermal rate of the 1,4-hydrogen shift reaction of 1-pentyl radical, and by comparing with experimental data, demonstrated that the MS-VTST rate is more accurate than that obtained by conventional single-structure VTST (SS-VTST).;The last chapter, chapter four, extends the MS-VTST method to multi-path VTST (MP-VTST), which includes not only the multi-structure effect, but also the contribution of the variational and tunneling effects of all reaction paths. We applied this formulation to calculate the thermal rate of 1,4-hydrogen shift isomerization of the 2-cyclohexylethyl radical using two reaction paths.
机译:为了使用计算方法来研究烷烃或生物燃料燃烧反应的动力学,需要解决两个巨大的挑战问题。第一个是多结构效应,它使无功势能表面复杂,并需要考虑多个稳态和多个反应路径来计算热速率。第二个问题来自扭转非谐性,这导致谐波振荡器逼近和正态分析失败,并需要在不同温度范围内使用不同模型来处理扭转。为了正确处理多结构和扭转非谐性,我们开发了内坐标多结构近似方法来计算大分子的分配函数。这种新方法可以在低温和高温范围内预测复杂分子的更准确分配函数。我们还开发了两种变迁过渡态理论(VTST)的新公式:具有多维隧道的多结构和多路径VTST,可在较宽的温度范围内计算氢转移反应的热速率。这些公式包括多结构和扭转非谐效应,以及在计算中使用多个反应路径评估平移效应和隧穿效应的更准确方法。论文工作分为以下四章:第一章讨论了内坐标多结构近似的理论,也称为多结构扭转(MS-T)近似及其在各种分子中的应用。尽管这项工作主要是由J.Zheng和S.Mielke在我们的小组中做出的,但是由于这一部分是接下来几章的基础之一,因此作者仍然希望在本篇文章中介绍这一部分。第二章研究热力学性质。 MS-T方法分析两个复杂分子,正庚烷和异庚烷将结果与API表和TRC数据集的实验数据以及经验组可加性方法进行了比较,以进一步证明MS-T逼近在计算大分子分配函数方面的成功。第三章着重介绍多分子扭转无序的结构变变态理论(MS-VTST),包括对反应物,产物和过渡态的多结构和扭转非谐性效应,但仅使用振动绝热基态势能最低的反应路径计算变异效应和隧穿效应的障碍。为了应用该理论,我们研究了1-戊基自由基的1,4-氢转移反应的热速率,并与实验数据进行比较,证明了MS-VTST速率比常规单结构的速率更准确。 VTST(SS-VTST)。;最后一章,第四章,将MS-VTST方法扩展到多路径VTST(MP-VTST),它不仅包括多结构效应,而且还包括变化和所有反应路径的隧道效应。我们应用此公式来计算使用两个反应路径的2-环己基乙基的1,4-氢转移异构化的热速率。

著录项

  • 作者

    Yu, Tao.;

  • 作者单位

    University of Minnesota.;

  • 授予单位 University of Minnesota.;
  • 学科 Chemistry Physical.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 249 p.
  • 总页数 249
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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