Theoretical Investigation on the Reaction Kinetics of OH with Furfural.

IF 2.7 2区 化学 Q3 CHEMISTRY, PHYSICAL
The Journal of Physical Chemistry A Pub Date : 2025-03-27 Epub Date: 2025-03-13 DOI:10.1021/acs.jpca.4c06221
Qiongxuan Zhu, Lili Xing, Zhiyuan Ma, Liuchao Lian, Jing Zhu, Haojie Li, Mengjie Liu, Xuetao Wang
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Abstract

Furfural is a typical representative molecule of furan compounds and an important intermediate species in the oxidation of furan derivatives. The rate constant of furfural with OH is calculated for the first time using a high-level quantum chemistry method combined with the Rice-Ramsperger-Kassel-Marcus theory/master equation method. The M06-2X/jun-cc-pVTZ method was used to construct the potential energy surface of the reaction path. The preliminary reactions can occur through three different pathways: H-abstraction from the furan ring, H-abstraction from the side chain, and a preliminary OH-addition. The pathways via the OH-addition mechanism of the furfural + OH system were superior to H-abstraction in the temperature range of 298-400 K. When the temperature exceeds 400 K, the H-abstraction will be faster. Moreover, with the increase of pressure, the competition of the pathway via the OH-addition mechanism in the low-temperature region will gradually weaken. Under low-temperature conditions, INT1 and INT4 are the main intermediate species. The formation of bimolecular products, the 2-furanol (P7) + aldehyde group and the (3E)-4-hydroxybuta-1,3-diene-1-one (P8) + aldehyde group at C(2) and C(5) sites, are the main reaction pathways via the OH-addition mechanism. The formation of (2-furanyl)(oxy) methyl (P4) + H2O (i.e., R4) always dominates for the four H-abstraction reactions. For the initial H-abstraction reaction, there is no pressure dependence, but for the preliminary OH-addition reaction, there is a significant positive pressure dependence. This work not only provides the necessary rate constants for modeling development but also provides theoretical guidance for the practical application of furan-based fuel.

糠醛是呋喃化合物的典型代表分子,也是呋喃衍生物氧化过程中的重要中间产物。本研究首次采用高水平量子化学方法结合赖斯-拉姆斯伯格-卡塞尔-马库斯理论/主方程方法计算了糠醛与 OH 反应的速率常数。采用 M06-2X/jun-cc-pVTZ 方法构建了反应路径的势能面。初步反应可通过三种不同途径发生:从呋喃环中萃取 H,从侧链中萃取 H,以及初步的 OH 加成。在 298-400 K 的温度范围内,通过糠醛 + OH 体系的 OH 加成机制的途径优于 H-萃取。此外,随着压力的增加,低温区通过 OH 加成机制的途径的竞争会逐渐减弱。在低温条件下,INT1 和 INT4 是主要的中间产物。在 C(2)和 C(5)位点形成双分子产物--2-呋喃酚(P7)+醛基和 (3E)-4- 羟基丁-1,3-二烯-1-酮(P8)+醛基,是通过羟基加成机理的主要反应途径。在四个 H-萃取反应中,(2-呋喃基)(氧) 甲基 (P4) + H2O(即 R4)的形成始终占主导地位。对于最初的 H-萃取反应,不存在压力依赖性,但对于初步的 OH-加成反应,存在显著的正压力依赖性。这项工作不仅为模型开发提供了必要的速率常数,还为呋喃基燃料的实际应用提供了理论指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
The Journal of Physical Chemistry A
The Journal of Physical Chemistry A 化学-物理:原子、分子和化学物理
CiteScore
5.20
自引率
10.30%
发文量
922
审稿时长
1.3 months
期刊介绍: The Journal of Physical Chemistry A is devoted to reporting new and original experimental and theoretical basic research of interest to physical chemists, biophysical chemists, and chemical physicists.
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