Liu Xu, Yang Li, Zhang Jiaxu, Sun Jianmin
State Key Laboratory of Advanced Welding and Joining, MIIT Key Laboratory of Critical Materials Technology for New Energy Conversion and Storage, School of Chemistry and Chemical Engineering , Harbin Institute of Technology , Harbin 150001 , P. R. China.
J Phys Chem A. 2018 Dec 13;122(49):9446-9453. doi: 10.1021/acs.jpca.8b08572. Epub 2018 Nov 30.
The potential energy profiles of F/OH-induced nucleophilic substitution (S2) and proton-transfer (PT) channels evolving with solvation for reactions of F(HO) + CHI were characterized using B3LYP/ECP/d method. The hydrogen-bonded F(HO) ---HCHI prereaction complex at the entrance of potential energy surface (PES) has a significant role on the reaction dynamics for each channel. Among the above three channels, the F-S2 channel is the most preferred and OH-S2 could be competitive. In contrast, the PT channel will occur at much higher collision energy. Importantly, for each channel, the central barrier is gradually increased with the addition of water molecules. This phenomenon indicates that the reactivity will decrease with degrees of solvation and this has been confirmed by experiment and direct dynamics simulations. Moreover, compared with the previous trajectory simulations, a non-IRC behavior has been uncovered. The water delivering process from fluorine to iodine side as illustrated on PES is barely observed, and instead, the reaction tends to dehydrate before passing through the S2 barrier and proceeds with the less hydrated pathway in order to weaken the steric effect. The work presented here shows the comprehensive potential energy surfaces and structures information on the F-S2, PT, and OH-S2 channels, and predict their competitive relationship, which would be helpful for better understanding the dynamics behavior of the title and analogous reactions.
使用B3LYP/ECP/d方法表征了F/OH诱导的亲核取代(S2)和质子转移(PT)通道随溶剂化作用的势能面,这些通道是F(HO) 与CHI反应过程中产生的。势能面(PES)入口处的氢键结合的F(HO) ---HCHI预反应复合物对每个通道的反应动力学都有重要作用。在上述三个通道中,F-S2通道是最优先的,OH-S2通道可能具有竞争力。相比之下,PT通道将在高得多的碰撞能量下发生。重要的是,对于每个通道,随着水分子的加入,中心势垒逐渐增加。这种现象表明反应活性将随着溶剂化程度而降低,这已通过实验和直接动力学模拟得到证实。此外,与之前的轨迹模拟相比,发现了一种非IRC行为。在PES上所示的从氟向碘一侧的水传递过程几乎未被观察到,相反,反应在通过S2势垒之前倾向于脱水,并以水合程度较低的途径进行,以减弱空间效应。本文的工作展示了F-S2、PT和OH-S2通道的综合势能面和结构信息,并预测了它们的竞争关系,这将有助于更好地理解标题反应及类似反应的动力学行为。