Swalina Chet, Wang Qian, Chakraborty Arindam, Hammes-Schiffer Sharon
Department of Chemistry, 104 Chemistry Building, Pennsylvania State University, University Park, Pennsylvania 16802, USA.
J Phys Chem A. 2007 Mar 22;111(11):2206-12. doi: 10.1021/jp0682661. Epub 2007 Feb 24.
The impact of nuclear quantum effects on hydrogen bonding is investigated for a series of hydrogen fluoride (HF)n clusters and a partially solvated fluoride anion, F-(H2O). The nuclear quantum effects are included using the path integral formalism in conjunction with the Car-Parrinello molecular dynamics (PICPMD) method and using the second-order vibrational perturbation theory (VPT2) approach. For the HF clusters, a directional change in the impact of nuclear quantum effects on the hydrogen-bonding strength is observed as the clusters evolve toward the condensed phase. Specifically, the inclusion of nuclear quantum effects increases the F-F distances for the (HF)n=2-4 clusters and decreases the F-F distances for the (HF)n>4 clusters. This directional change occurs because the enhanced electrostatic interactions between the HF monomers become more dominant than the zero point energy effects of librational modes as the size of the HF clusters increases. For the F-(H2O) system, the inclusion of nuclear quantum effects decreases the F-O distance and strengthens the hydrogen bonding interaction between the fluoride anion and the water molecule because of enhanced electrostatic interactions. The vibrationally averaged 19F shielding constant for F-(H2O) is significantly lower than the value for the equilibrium geometry, indicating that the electronic density on the fluorine decreases as a result of the quantum delocalization of the shared hydrogen. Deuteration of this system leads to an increase in the vibrationally averaged F-O distance and nuclear magnetic shielding constant because of the smaller degree of quantum delocalization for deuterium.
针对一系列氟化氢(HF)n团簇和部分溶剂化的氟离子F-(H2O),研究了核量子效应 对氢键的影响。采用路径积分形式结合Car-Parrinello分子动力学(PICPMD)方法以及二阶振动微扰理论(VPT2)方法来纳入核量子效应。对于HF团簇,随着团簇向凝聚相演化,观察到核量子效应 对氢键强度的影响存在方向变化。具体而言,纳入核量子效应会增加(HF)n = 2 - 4团簇的F - F距离,而减小(HF)n > 4团簇的F - F距离。这种方向变化的发生是因为随着HF团簇尺寸的增加,HF单体之间增强的静电相互作用比平动模式的零点能效应变得更加占主导地位。对于F-(H2O)体系,由于静电相互作用增强,纳入核量子效应会减小F - O距离并增强氟离子与水分子之间的氢键相互作用。F-(H2O)的振动平均19F屏蔽常数显著低于平衡几何结构的值,这表明由于共享氢的量子离域,氟上的电子密度降低。该体系的氘代导致振动平均F - O距离和核磁屏蔽常数增加,这是因为氘的量子离域程度较小。