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醚燃烧中ROROO·自由基的分子内氢迁移反应类的反应速率规则

Reaction Rate Rules of Intramolecular H-Migration Reaction Class for ROROO·Radicals in Ether Combustion.

作者信息

Sun Xiaohui, Li Zerong

机构信息

School of Energy Engineering, Shanxi College of Technology, Shuozhou 036000, China.

College of Chemistry, Sichuan University, Chengdu 610064, China.

出版信息

Molecules. 2024 Sep 15;29(18):4387. doi: 10.3390/molecules29184387.

Abstract

The intramolecular H-migration reaction of ROROO· radicals constitute a key class of reactions in the low-temperature combustion mechanism of ethers. Despite this, there is a dearth of direct computations regarding the potential energy surface and rate constants specific to ethers, especially when considering large molecular systems and intricate branched-chain structures. Furthermore, combustion kinetic models for large molecular ethers generally utilize rate constants derived from those of structurally similar alcohols or alkane fuels. Consequently, chemical kinetic studies involve the calculation of energy barriers and rate rules for the intramolecular H-migration reaction class of ROROO· radicals, which are systematically conducted using the isodesmic reaction method (IRM). The geometries of the species participating in these reactions are optimized, and frequency calculations are executed using the M06-X method in tandem with the 6-31+G(d,p) basis set by the Gaussian 16 program. Moreover, the M06-2X/6-31+G(d,p) method acts as the low-level ab initio method, while the CBS-QB3 method is utilized as the high-level ab initio method for calculating single-point energies. Rate constants at the high-pressure-limit are computed based on the reaction class transition state theory (RC-TST) by ChemRate program, incorporating asymmetric Eckart tunneling corrections for intramolecular H-migration reactions across a temperature range of 500 to 2000 K. It was found that the isodesmic reaction method gives accurate energy barriers and rate constants, and the rate constants of the H-migration reaction for ROROO· radicals diverge from those of comparable reactions in alkanes and alcohol fuels. There are significant disparities in energy barriers and rate constants across the entire reaction classes of the H-migration reaction for ROROO· radicals, necessitating the subdivision of the H-migration reaction into subclasses. Rate rules are established by averaging the rate constants of representative reactions for each subclass, which is pivotal for the advancement of accurate low-temperature combustion reaction mechanisms for ethers.

摘要

ROROO·自由基的分子内氢迁移反应是醚类低温燃烧机理中的一类关键反应。尽管如此,针对醚类特定的势能面和速率常数的直接计算却很匮乏,尤其是在考虑大分子体系和复杂支链结构时。此外,大分子醚类的燃烧动力学模型通常使用从结构相似的醇类或烷烃燃料衍生而来的速率常数。因此,化学动力学研究涉及对ROROO·自由基分子内氢迁移反应类别的能垒和速率规则的计算,这些计算是使用等键反应方法(IRM)系统进行的。参与这些反应的物种的几何结构被优化,频率计算使用高斯16程序中的M06-X方法与6-31+G(d,p)基组协同执行。此外,M06-2X/6-31+G(d,p)方法用作低级从头算方法,而CBS-QB3方法用作计算单点能量的高级从头算方法。高压极限下的速率常数通过ChemRate程序基于反应类过渡态理论(RC-TST)计算,纳入了500至2000 K温度范围内分子内氢迁移反应的非对称埃卡特隧穿校正。结果发现,等键反应方法给出了准确的能垒和速率常数,并且ROROO·自由基氢迁移反应的速率常数与烷烃和醇类燃料中类似反应的速率常数不同。ROROO·自由基氢迁移反应的整个反应类别在能垒和速率常数上存在显著差异,因此有必要将氢迁移反应细分为子类。通过对每个子类代表性反应的速率常数进行平均来建立速率规则,这对于推进准确的醚类低温燃烧反应机理至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d581/11433709/f86172bc6285/molecules-29-04387-sch001.jpg

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