Zhang Wanqiao, Guo Xiaodi, Zhang Yunju, Wang Fang, Shi Haijie, Zhang Jingping, Wang Rongshun, Tang Shuwei, Wang Haitao, Sun Hao
Institute of Functional Material Chemistry, Faculty of Chemistry, National & Local United Engineering Lab for Power Battery, Northeast Normal University, Renmin Road 5268, Changchun, Jilin, 130024, People's Republic of China,
J Mol Model. 2014 Jul;20(7):2335. doi: 10.1007/s00894-014-2335-0. Epub 2014 Jul 10.
The trans-2-chlorovinyldichloroarsine (Lewisite) was produced and handled during WWI and WWII as chemical warfare agents. It was very difficult to explore its chemical characterization by experiments ways. The quantum chemical calculations proved to be a precise and harmless method for the toxicological system. In this paper, the gas phase reaction mechanisms of OH radical with trans-2-chlorovinyldichloroarsine (lewisite) were studied by second-order Møller-Plesset perturbation theory (MP2) method. The geometries of reactants, products, complexes, and transition states were optimized at the MP2/6-311++G(d,p) level. To gain more accurate mechanistic knowledge, the single-point energies were calculated using G3 and CCSD(T) method. This reaction exhibited three mechanisms, namely, direct hydrogen abstraction, direct chlorine abstraction, and addition/elimination. Multichannel Rice-Ramsperger-Kassel-Marcus theory and transition-state theory have been carried out for overall and individual rate constants over a wide range of temperatures and pressures. The computational results indicated that addition/elimination reaction is more favorable than direct hydrogen abstraction and direct chlorine abstraction. The major products for the total reaction are AsCl2 and CHClCH2O generated via C(2)-addition/elimination.
反式-2-氯乙烯基二氯胂(路易氏剂)在第一次世界大战和第二次世界大战期间作为化学战剂生产和使用。通过实验方法探究其化学特性非常困难。量子化学计算被证明是一种用于毒理学系统的精确且无害的方法。本文采用二阶微扰理论(MP2)方法研究了OH自由基与反式-2-氯乙烯基二氯胂(路易氏剂)的气相反应机理。在MP2/6-311++G(d,p)水平上对反应物、产物、络合物和过渡态的几何结构进行了优化。为了获得更准确的反应机理知识,使用G3和CCSD(T)方法计算了单点能量。该反应呈现出三种反应机理,即直接氢提取、直接氯提取和加成/消除。在广泛的温度和压力范围内,对总反应速率常数和各反应速率常数运用了多通道 Rice-Ramsperger-Kassel-Marcus 理论和过渡态理论。计算结果表明,加成/消除反应比直接氢提取和直接氯提取更有利。总反应的主要产物是通过C(2)-加成/消除生成的AsCl2和CHClCH2O。