Suppr超能文献

碳正离子化学的量子力学和量子力学-分子力学方法的基准研究。

A Benchmark Study of Quantum Mechanics and Quantum Mechanics-Molecular Mechanics Methods for Carbocation Chemistry.

机构信息

Department of Chemistry and Institute for Nanotechnology & Advanced Materials, Bar-Ilan University, Ramat-Gan 52900, Israel.

出版信息

J Chem Theory Comput. 2022 Jan 11;18(1):167-178. doi: 10.1021/acs.jctc.1c00746. Epub 2021 Dec 14.

Abstract

Carbocations play key roles in classical organic reactions and have also been implicated in several enzyme families. A hallmark of carbocation chemistry is multitudes of competing reaction pathways, and to be able to distinguish between pathways with quantum chemical calculations, it is necessary to approach chemical accuracy for relative energies between carbocations. Here, we present an extensive study of the performance of selected density functional theory (DFT) methods in describing the thermochemistry and kinetics of carbocations and their corresponding neutral alkenes both in the gas-phase and within a hybrid quantum mechanics-molecular mechanics (QM/MM) framework. The density functionals are benchmarked against accurate ab initio methods such as CBS-QB3 and DLPNO-CCSD(T). Based on the findings in the gas-phase calculations of carbocations and alkenes, the best functionals are chosen and tested further for non-covalent interactions in model systems using QM and QM/MM methods. We compute the interaction energies between a model carbocation/alkane and model π, dipole, and hydrophobic systems using DFT and QM(DFT)/MM and compare with DLPNO-CCSD(T). These latter model systems are representative of side chains of amino acids such as phenylalanine/tyrosine, tryptophan, asparagine/glutamine, serine/threonine, methionine, and other hydrophobic groups. The Lennard-Jones parameters of the QM atoms in QM(DFT)/MM calculations are modified to obtain an optimal fit with the QM energies. Finally, a selected carbocation reaction is studied in the gas phase and in implicit chloroform solvent using QM and in explicit chloroform solvent using QM/MM and umbrella sampling simulations. This study highlights the highest accuracy possible with selected density functionals and QM/MM methods but also some limitations in using QM/MM methods for carbocation systems.

摘要

碳正离子在经典有机反应中起着关键作用,也被牵连到几个酶家族中。碳正离子化学的一个特点是存在大量竞争反应途径,为了能够通过量子化学计算来区分途径,有必要用量子化学方法来接近碳正离子之间相对能量的化学精度。在这里,我们对选定的密度泛函理论(DFT)方法在描述气相中和混合量子力学-分子力学(QM/MM)框架内的碳正离子及其相应的中性烯烃的热化学和动力学方面的性能进行了广泛的研究。这些密度泛函方法与 CBS-QB3 和 DLPNO-CCSD(T) 等精确的从头计算方法进行了基准测试。基于气相中碳正离子和烯烃的计算结果,选择了最佳的功能,并进一步使用 QM 和 QM/MM 方法在模型系统中对非共价相互作用进行了测试。我们使用 DFT 和 QM(DFT)/MM 计算了模型碳正离子/烷烃与模型π、偶极和疏水性系统之间的相互作用能,并与 DLPNO-CCSD(T)进行了比较。这些模型系统代表了氨基酸的侧链,如苯丙氨酸/酪氨酸、色氨酸、天冬酰胺/谷氨酰胺、丝氨酸/苏氨酸、甲硫氨酸和其他疏水性基团。在 QM(DFT)/MM 计算中,QM 原子的 Lennard-Jones 参数进行了修改,以获得与 QM 能量的最佳拟合。最后,在气相中和在隐式氯仿溶剂中使用 QM 以及在显式氯仿溶剂中使用 QM/MM 和伞状采样模拟研究了选定的碳正离子反应。这项研究强调了使用选定的密度泛函和 QM/MM 方法可以达到的最高精度,但也指出了在使用 QM/MM 方法处理碳正离子系统时存在一些限制。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验