Roy Sudip, Ataol Tamer M, Müller-Plathe Florian
Eduard-Zintl Institut für Anorganische and Physikalische Chemie, Technische Universität Darmstadt, Petersenstr.-20, 64287 Darmstadt, Germany.
J Phys Chem B. 2008 Jun 26;112(25):7403-9. doi: 10.1021/jp0757107. Epub 2008 May 31.
Atomistic molecular dynamics simulations have been performed on heptyl phosphonic acid (HPA) to understand the dynamic hydrogen bonding network in the liquid phase. HPA is a phosphonic-acid functionalized alkane (heptane) and a model compound for one of the promising polymers for high temperature (>100 degrees C) fuel cell polymer electrolyte membranes. For the simulation, a force field for this molecule has been generated with the help of quantum chemical calculations and optimized by simplex algorithm. The force field has been validated against experimentally measured properties, for example, density and self-diffusion constant. From molecular dynamics simulations conducted at different temperatures, we have confirmed the hypothesis of dynamic hydrogen bond network formation in this material.
已对庚基膦酸(HPA)进行了原子分子动力学模拟,以了解其液相中的动态氢键网络。HPA是一种膦酸官能化的烷烃(庚烷),也是用于高温(>100摄氏度)燃料电池聚合物电解质膜的一种有前景的聚合物的模型化合物。为了进行模拟,借助量子化学计算生成了该分子的力场,并通过单纯形算法进行了优化。该力场已根据实验测量的性质(例如密度和自扩散常数)进行了验证。通过在不同温度下进行的分子动力学模拟,我们证实了这种材料中动态氢键网络形成的假设。