Guerra Maurizio, Amorati Riccardo, Pedulli Gian Franco
Contribution from ISOF, Consiglio Nazionale delle Ricerche, Via P. Gobetti 101, I-40129 Bologna, Italy.
J Org Chem. 2004 Aug 6;69(16):5460-7. doi: 10.1021/jo0495236.
The effect of water on the O-H bond dissociation enthalpy (BDE) of para-substituted phenols has been investigated by means of DFT calculations. It is shown that the experimental BDE values are fairly well-reproduced by simple B3LYP/6-31G* calculations carried out on the phenol/phenoxyl-water complexes taking into account only hydrogen-bonding (HB) interactions of water molecules with molecular sites (HB model). On the contrary, the BDE values computed with the polarizable continuum model (PCM/B3LYP/6-31G*)8 are overestimated by about 3-4 kcal/mol. Discrepancy between theory and experiment increases using the PCM method in addition to the HB model. Calculations show that, in general, the HB interaction with water molecules decreases the BDE of phenols bearing electron-releasing groups while increasing the BDE of phenols bearing electron-withdrawing substituents. This opposite effect is explained by considering the resonance structures with charge separation both in phenols and in phenoxyl radicals. With electron donors, the phenoxyl radical is preferentially stabilized by the HB acceptor interaction with two water molecules, while with electron acceptors the phenol is preferentially stabilized by the HB donor interaction with one water molecule.
通过密度泛函理论(DFT)计算研究了水对对位取代酚中O-H键解离焓(BDE)的影响。结果表明,仅考虑水分子与分子位点的氢键(HB)相互作用(HB模型),在苯酚/苯氧基-水络合物上进行简单的B3LYP/6-31G计算,就能较好地重现实验BDE值。相反,用极化连续介质模型(PCM/B3LYP/6-31G)计算得到的BDE值被高估了约3-4千卡/摩尔。除了HB模型外,使用PCM方法会增加理论与实验之间的差异。计算表明,一般来说,与水分子的HB相互作用会降低带有供电子基团的酚的BDE,同时增加带有吸电子取代基的酚的BDE。这种相反的效应可以通过考虑酚和苯氧基自由基中电荷分离的共振结构来解释。对于供电子体,苯氧基自由基优先通过与两个水分子的HB受体相互作用而稳定,而对于吸电子体,苯酚优先通过与一个水分子的HB供体相互作用而稳定。