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偶氮苯的热异构化:关于艾林过渡态理论的性能

Thermal isomerization of azobenzenes: on the performance of Eyring transition state theory.

作者信息

Rietze Clemens, Titov Evgenii, Lindner Steven, Saalfrank Peter

机构信息

Institut für Chemie, Universität Potsdam, Karl-Liebknecht-Strasse 24-25, D-14476 Potsdam, Germany.

出版信息

J Phys Condens Matter. 2017 Aug 9;29(31):314002. doi: 10.1088/1361-648X/aa75bd. Epub 2017 May 30.

DOI:10.1088/1361-648X/aa75bd
PMID:28557809
Abstract

The thermal [Formula: see text] (back-)isomerization of azobenzenes is a prototypical reaction occurring in molecular switches. It has been studied for decades, yet its kinetics is not fully understood. In this paper, quantum chemical calculations are performed to model the kinetics of an experimental benchmark system, where a modified azobenzene (AzoBiPyB) is embedded in a metal-organic framework (MOF). The molecule can be switched thermally from cis to trans, under solvent-free conditions. We critically test the validity of Eyring transition state theory for this reaction. As previously found for other azobenzenes (albeit in solution), good agreement between theory and experiment emerges for activation energies and activation free energies, already at a comparatively simple level of theory, B3LYP/6-31G including dispersion corrections. However, theoretical Arrhenius prefactors and activation entropies are in qualitiative disagreement with experiment. Several factors are discussed that may have an influence on activation entropies, among them dynamical and geometric constraints (imposed by the MOF). For a simpler model-[Formula: see text] isomerization in azobenzene-a systematic test of quantum chemical methods from both density functional theory and wavefunction theory is carried out in the context of Eyring theory. Also, the effect of anharmonicities on activation entropies is discussed for this model system. Our work highlights capabilities and shortcomings of Eyring transition state theory and quantum chemical methods, when applied for the [Formula: see text] (back-)isomerization of azobenzenes under solvent-free conditions.

摘要

偶氮苯的热[公式:见原文](反)异构化是分子开关中发生的典型反应。该反应已被研究数十年,但其动力学仍未被完全理解。本文进行了量子化学计算,以模拟一个实验基准系统的动力学,在该系统中,一种改性偶氮苯(AzoBiPyB)嵌入在金属有机框架(MOF)中。在无溶剂条件下,该分子可通过热作用从顺式转变为反式。我们严格检验了艾林过渡态理论对该反应的有效性。正如之前在其他偶氮苯中发现的那样(尽管是在溶液中),在相对简单的理论水平(包括色散校正的B3LYP/6 - 31G)下,理论与实验在活化能和活化自由能方面就已出现良好的一致性。然而,理论上的阿仑尼乌斯指前因子和活化熵与实验在定性上存在分歧。讨论了几个可能影响活化熵的因素,其中包括(由MOF施加的)动力学和几何约束。对于偶氮苯中一个更简单的模型 - [公式:见原文]异构化,在艾林理论的背景下对来自密度泛函理论和波函数理论的量子化学方法进行了系统测试。此外,还讨论了该模型系统中非谐性对活化熵的影响。我们的工作突出了艾林过渡态理论和量子化学方法在无溶剂条件下应用于偶氮苯的[公式:见原文](反)异构化时的能力和不足。

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