Turner C Heath
University of Alabama, Box 870203, Tuscaloosa, Alabama 35487-0203, USA.
J Phys Chem B. 2005 Dec 15;109(49):23588-95. doi: 10.1021/jp0528156.
Chemical reactions are known to behave differently, depending upon their local environment. While the interactions with neighboring molecules may alter both the kinetics of chemical reactions and the overall equilibrium conversion, we have performed simulations of the latter. The particular environment that we address is the vapor-liquid interface, since only a few, limited studies have explored the influence of an interface on equilibrium reaction behavior. Simple dimerization reactions are modeled, as well as more complex multicomponent reactions, using the reactive Monte Carlo (RxMC) simulation technique. We find that the conversion of a reaction can be markedly different at an interface as compared to the bulk vapor and liquid phases, and these trends are analyzed with respect to specific intermolecular interactions. In conjunction, we calculate the surface tension of the reacting fluids at the interface, which is found to have unusual scaling behavior, with respect to the system temperature.
众所周知,化学反应的行为会因其局部环境的不同而有所差异。虽然与相邻分子的相互作用可能会改变化学反应的动力学以及整体平衡转化率,但我们进行了关于后者的模拟。我们所研究的特定环境是气液界面,因为仅有少数有限的研究探讨了界面在平衡反应行为方面的影响。使用反应蒙特卡罗(RxMC)模拟技术对简单的二聚反应以及更复杂的多组分反应进行了建模。我们发现,与本体气相和液相相比,反应在界面处的转化率可能会显著不同,并且针对特定的分子间相互作用对这些趋势进行了分析。同时,我们计算了界面处反应流体的表面张力,发现其相对于系统温度具有不寻常的标度行为。