Horváth Kitti, Tajti Viktor, Papp Dóra, Czakó Gábor
MTA-SZTE Lendület Computational Reaction Dynamics Research Group, Interdisciplinary Excellence Centre and Department of Physical Chemistry and Materials Science, Institute of Chemistry, University of Szeged, Rerrich Béla tér 1, Szeged H-6720, Hungary.
J Phys Chem A. 2024 Jun 6;128(22):4474-4482. doi: 10.1021/acs.jpca.4c02042. Epub 2024 May 29.
We report a full-dimensional ab initio analytical potential energy surface (PES), which accurately describes the HCl + CH multichannel reaction. The new PES is developed by iteratively adding selected configurations along HCl + CH quasi-classical trajectories (QCTs), thereby improving our previous Cl(P) + CH PES using the Robosurfer program package. QCT simulations for the H'Cl + CH reaction reveal hydrogen-abstraction, chlorine-abstraction, and hydrogen-exchange channels leading to Cl + CHH', H' + CHCl, and HCl + CHH', respectively. Hydrogen abstraction dominates in the collision energy () range of 1-80 kcal/mol and proceeds with indirect isotropic scattering at low and forward-scattered direct stripping at high . Chlorine abstraction opens around 40 kcal/mol collision energy and becomes competitive with hydrogen abstraction at = 80 kcal/mol. A restricted opening of the cone of acceptance in the Cl-abstraction reaction is found to result in the preference for a backward-scattering direct-rebound mechanism at all energies studied. Initial attack-angle distributions show mainly side-on collision preference of CH for both abstraction reactions, and in the case of the HCl reactant, H/Cl-side preference for the H/Cl abstraction. For hydrogen abstraction, the collision energy transfer into the product translational and internal energy is almost equally significant, whereas in the case of chlorine abstraction, most of the available energy goes into the internal degrees of freedom. Hydrogen exchange is a minor channel with nearly constant reactivity in the range of 10-80 kcal/mol.
我们报告了一个全维从头算分析势能面(PES),它准确地描述了HCl + CH多通道反应。新的PES是通过沿着HCl + CH准经典轨迹(QCT)迭代添加选定的构型而开发的,从而使用Robosurfer程序包改进了我们之前的Cl(P) + CH PES。对HCl + CH反应的QCT模拟揭示了氢抽取、氯抽取和氢交换通道,分别导致Cl + CHH'、H' + CHCl和HCl + CHH'。在1 - 80千卡/摩尔的碰撞能量()范围内,氢抽取占主导,在低碰撞能量下以间接各向同性散射进行,在高碰撞能量下以前向散射直接剥离进行。氯抽取在约40千卡/摩尔的碰撞能量处开启,并在 = 80千卡/摩尔时与氢抽取竞争。发现在氯抽取反应中接受锥的受限开启导致在所有研究能量下都倾向于后向散射直接反弹机制。初始攻角分布表明,对于两种抽取反应,CH主要倾向于侧向碰撞,对于HCl反应物,在H/Cl抽取时倾向于H/Cl侧。对于氢抽取,碰撞能量转移到产物平动和内能中几乎同样显著,而在氯抽取的情况下,大部分可用能量进入内自由度。氢交换是一个次要通道,在10 - 80千卡/摩尔的范围内反应性几乎恒定。