Mahadevan T S, Garofalini S H
Interfacial Molecular Science Laboratory, Department of Materials Science and Engineering, Rutgers University, Piscataway, New Jersey 08855, USA.
J Phys Chem B. 2007 Aug 2;111(30):8919-27. doi: 10.1021/jp072530o. Epub 2007 Jun 30.
A new interatomic potential for dissociative water was developed for use in molecular dynamics simulations. The simulations use a multibody potential, with both pair and three-body terms, and the Wolf summation method for the long-range Coulomb interactions. A major feature in the potential is the change in the short-range O-H repulsive interaction as a function of temperature and/or pressure in order to reproduce the density-temperature curve between 273 K and 373 at 1 atm, as well as high-pressure data at various temperatures. Using only the change in this one parameter, the simulations also reproduce room-temperature properties of water, such as the structure, cohesive energy, diffusion constant, and vibrational spectrum, as well as the liquid-vapor coexistence curve. Although the water molecules could dissociate, no dissociation is observed at room temperature. However, behavior of the hydronium ion was studied by introduction of an extra H+ into a cluster of water molecules. Both Eigen and Zundel configurations, as well as more complex configurations, are observed in the migration of the hydronium.
一种用于离解水的新原子间势被开发出来用于分子动力学模拟。模拟使用多体势,包括对势和三体项,以及用于长程库仑相互作用的沃尔夫求和方法。该势的一个主要特征是短程O-H排斥相互作用随温度和/或压力的变化,以便在1个大气压下重现273 K至373 K之间的密度-温度曲线以及各种温度下的高压数据。仅通过改变这一个参数,模拟还能重现水在室温下的性质,如结构、内聚能、扩散常数和振动光谱,以及液-气共存曲线。尽管水分子可能会离解,但在室温下未观察到离解现象。然而,通过向水分子簇中引入一个额外的H+来研究水合氢离子的行为。在水合氢离子的迁移过程中观察到了本征构型和尊德构型以及更复杂的构型。