首页> 美国卫生研究院文献>International Journal of Molecular Sciences >The Thermodynamic and Kinetic Properties of 2-Hydroxypyridine/2-Pyridone Tautomerization: A Theoretical and Computational Revisit
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The Thermodynamic and Kinetic Properties of 2-Hydroxypyridine/2-Pyridone Tautomerization: A Theoretical and Computational Revisit

机译:2-羟基吡啶/ 2-吡啶酮互变异构的热力学和动力学性质:理论和计算研究

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摘要

The gas-phase thermal tautomerization reaction between 2-hydroxypyridine (2-HPY) and 2-pyridone (2-PY) was investigated by applying 6-311++G** and aug-cc-pvdz basis sets incorporated into some density functional theory (DFT) and coupled cluster with singles and doubles (CCSD) methods. The geometrical structures, dipole moments, HOMO-LUMO energy gaps, total hyperpolarizability, kinetics and thermodynamics functions were monitored against the effects of the corrections imposed on these functionals. The small experimental energy difference between the two tautomers of 3.23 kJ/mol; was a real test of the accuracy of the applied levels of theory. M062X and CCSD methods predicted the preference of 2-HPY over 2-PY by 5–9 kJ/mol; while B3LYP functional favoured 2-PY by 1–3 kJ/mol. The CAM-B3LYP and ωB97XD functionals yielded mixed results depending on the basis set used. The source of preference of 2-HPY is the minimal steric hindrance and electrostatic repulsion that subdued the huge hyperconjugation in 2-PY. A 1,3-proton shift intramolecular gas-phase tautomerization yielded a high average activation of 137.152 kJ/mol; while the intermolecular mixed dimer interconversion gave an average barrier height of 30.844 kJ/mol. These findings are boosted by a natural bond orbital (NBO) technique. The low total hyperpolarizabilities of both tautomers mark out their poor nonlinear optical (NLO) behaviour. The enhancement of the total hyperpolarizability of 2-HPY over that of 2-PY is interpreted by the bond length alternation.
机译:通过应用6-311 ++ G **和结合到某些密度泛函中的ug-cc-pvdz基集,研究了2-羟基吡啶(2-HPY)和2-吡啶酮(2-PY)之间的气相热互变异构反应。理论(DFT)和单双打耦合群集(CCSD)方法。针对施加于这些功能的校正作用,对几何结构,偶极矩,HOMO-LUMO能隙,总超极化率,动力学和热力学函数进行了监测。两种互变异构体之间较小的实验能量差为3.23 kJ / mol;是对理论应用水平准确性的真实检验。 M062X和CCSD方法预测2-HPY优先于2-PY 5–9 kJ / mol。而B3LYP的功能性则以1-3 kJ / mol的比例偏爱2-PY。 CAM-B3LYP和ωB97XD官能团根据所使用的基础集产生混合结果。 2-HPY的首选来源是最小的空间位阻和静电排斥力,它抑制了2-PY的巨大超共轭作用。 1,3-质子转移分子内气相互变异构化产生了137.152 kJ / mol的高平均活化度;分子间混合的二聚体相互转化产生的平均势垒高度为30.844 kJ / mol。这些发现通过自然键轨道(NBO)技术得到了增强。两种互变异构体的低总超极化率很低,表明它们的不良非线性光学(NLO)行为。 2-HPY的总超极化率比2-PY的总超极化率增强可以通过键长交替来解释。

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