Kolmodin Karin, Luzhkov Victor B, Aqvist Johan
Department of Cell and Molecular Biology, Biomedical Center, Uppsala University, Box 596, SE-751 24 Uppsala, Sweden.
J Am Chem Soc. 2002 Aug 28;124(34):10130-5. doi: 10.1021/ja012669r.
Results from theoretical calculations of (16)O/(18)O equilibrium isotope effects (EIEs) on deprotonation of phosphate and methyl phosphate monoanions as well as their deuterated counterparts are reported. The EIEs are calculated from the Bigeleisen equation using harmonic vibrational frequencies from several quantum mechanical methods (HF, DFT, MP2, and AM1). All methods correctly predict the qualitative trends in the EIEs related to the different isotope substitutions. However, the calculated gas-phase values are found to be systematically higher than those experimentally observed in aqueous solution. On the other hand, the addition of explicit solvent molecules (up to 24 waters) in the first solvation shells of the phosphate ion substantially improves the calculated EIE, which approaches the experimental value with increasing size of the water cluster. The large effects of surrounding water molecules on the phosphate deprotonation EIE can be explained by the strong solute-solvent interactions, which result in solvent coupled vibrational modes of the phosphate ions.
报道了关于(16)O/(18)O平衡同位素效应(EIEs)对磷酸根和甲基磷酸单阴离子及其氘代对应物去质子化影响的理论计算结果。EIEs是根据Bigeleisen方程,使用几种量子力学方法(HF、DFT、MP2和AM1)的谐波振动频率计算得出的。所有方法都正确预测了与不同同位素取代相关的EIEs的定性趋势。然而,发现计算出的气相值系统地高于在水溶液中实验观察到的值。另一方面,在磷酸根离子的第一溶剂化层中添加明确的溶剂分子(最多24个水分子)显著改善了计算出的EIE,随着水簇尺寸的增加,其接近实验值。周围水分子对磷酸根去质子化EIE的巨大影响可以通过强烈的溶质-溶剂相互作用来解释,这导致了磷酸根离子的溶剂耦合振动模式。