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首页> 外文期刊>Philosophical Transactions of the Royal Society of London, Series B. Biological Sciences >Arrhenius curves of hydrogen transfers: tunnel effects, isotope effects and effects of pre-equilibria
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Arrhenius curves of hydrogen transfers: tunnel effects, isotope effects and effects of pre-equilibria

机译:氢转移的阿累尼乌斯曲线:隧道效应,同位素效应和预平衡效应

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摘要

In this paper, the Arrhenius curves of selected hydrogen-transfer reactions for which kinetic data are available in a large temperature range are reviewed. The curves are discussed in terms of the one-dimensional Bell-Limbach tunnelling model. The main parameters of this model are the barrier heights of the isotopic reactions, barrier width of the H-reaction, tunnelling masses, pre-exponential factor and minimum energy for tunnelling to occur. The model allows one to compare different reactions in a simple way and prepare the kinetic data for more-dimensional treatments. The first type of reactions is concerned with reactions where the geometries of the reacting molecules are well established and the kinetic data of the isotopic reactions are available in a large temperature range. Here, it is possible to study the relation between kinetic isotope effects (KIEs) and chemical structure. Examples are the tautomerism of porphyrin, the porphyrin anion and related compounds exhibiting intramolecular hydrogen bonds of medium strength. We observe pre-exponential factors of the order of kT/h congruent to 10(13) s(-1) corresponding to vanishing activation entropies in terms of transition state theory. This result is important for the second type of reactions discussed in this paper, referring mostly to liquid solutions. Here, the reacting molecular configurations may be involved in equilibria with non- or less-reactive forms. Several cases are discussed, where the less-reactive forms dominate at low or at high temperature, leading to unusual Arrhenius curves. These cases include examples from small molecule solution chemistry like the base-catalysed intramolecular H-transfer in diaryltriazene, 2-(2-hydroxyphenyl)-benzoxazole, 2-hydroxy-phenoxyl radicals, as well as in the case of an enzymatic system, thermophilic alcohol dehydrogenase. In the latter case, temperature-dependent KIEs are interpreted in terms of a transition between two regimes with different temperature-independent KIEs.
机译:在本文中,回顾了选定的氢转移反应的Arrhenius曲线,该曲线的动力学数据在较大温度范围内可用。这些曲线是根据一维Bell-Limbach隧道模型进行讨论的。该模型的主要参数是同位素反应的势垒高度,H反应的势垒宽度,隧穿质量,指数前因子和发生隧穿的最小能量。该模型允许人们以一种简单的方式比较不同的反应,并为多维治疗准备动力学数据。第一类反应涉及反应,其中反应分子的几何结构已经很好地建立,并且同位素反应的动力学数据在较大的温度范围内可用。在这里,有可能研究动力学同位素效应(KIE)与化学结构之间的关系。例子是卟啉的互变异构体,卟啉阴离子和具有中等强度的分子内氢键的相关化合物。我们观察到过渡态理论中与消失的激活熵相对应的kT / h阶数的kT / h等于10(13)s(-1)。该结果对于本文讨论的第二种反应非常重要,主要涉及液体溶液。在此,反应性分子构型可以与非反应性或反应性较低的形式平衡。讨论了几种情况,其中反应性较低的形式在低温或高温下占主导地位,从而导致异常的阿累尼乌斯曲线。这些情况包括来自小分子溶液化学的例子,例如在二芳基三氮烯,2-(2-羟苯基)-苯并恶唑,2-羟基-苯氧基基团中进行碱催化的分子内H转移,以及在酶体系中为嗜热的醇脱氢酶。在后一种情况下,根据温度不同的KIE的两个状态之间的转换来解释温度相关的KIE。

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