Roszak Szczepan, Gee Richard H, Balasubramanian Krishnan, Fried Laurence E
Chemistry and Materials Science Directorate, Lawrence Livermore National Laboratory, University of California, Livermore, California 94550, USA.
J Chem Phys. 2005 Oct 8;123(14):144702. doi: 10.1063/1.2052707.
We performed ab initio quantum-chemical studies for the development of intra- and intermolecular interaction potentials for formic acid for use in molecular-dynamics simulations of formic acid molecular crystal. The formic acid structures considered in the ab initio studies include both the cis and trans monomers which are the conformers that have been postulated as part of chains constituting liquid and crystal phases under extreme conditions. Although the cis to trans transformation is not energetically favored, the trans isomer was found as a component of stable gas-phase species. Our decomposition scheme for the interaction energy indicates that the hydrogen-bonded complexes are dominated by the Hartree-Fock forces while parallel clusters are stabilized by the electron correlation energy. The calculated three-body and higher interactions are found to be negligible, thus rationalizing the development of an atom-atom pair potential for formic acid based on high-level ab initio calculations of small formic acid clusters. Here we present an atom-atom pair potential that includes both intra- and inter molecular degrees of freedom for formic acid. The newly developed pair potential is used to examine formic acid in the condensed phase via molecular-dynamics simulations. The isothermal compression under hydrostatic pressure obtained from molecular-dynamics simulations is in good agreement with experiment. Further, the calculated equilibrium melting temperature is found to be in good agreement with experiment.
我们进行了从头算量子化学研究,以开发用于甲酸分子晶体分子动力学模拟的分子内和分子间相互作用势。从头算研究中考虑的甲酸结构包括顺式和反式单体,这两种构象异构体被假定为在极端条件下构成液相和晶相的链的一部分。尽管顺式到反式的转变在能量上不利,但反式异构体被发现是稳定气相物种的一个组成部分。我们对相互作用能的分解方案表明,氢键复合物主要由哈特里-福克力主导,而平行簇则由电子相关能稳定。计算得到的三体及更高阶相互作用可忽略不计,这为基于小分子甲酸簇的高水平从头算计算开发甲酸的原子-原子对势提供了合理性依据。在此,我们提出了一种包含甲酸分子内和分子间自由度的原子-原子对势。新开发的对势通过分子动力学模拟用于研究凝聚相中的甲酸。从分子动力学模拟得到的静水压力下的等温压缩与实验结果吻合良好。此外,计算得到的平衡熔化温度与实验结果也吻合良好。