Esrafili Mehdi D, Behzadi Hadi, Hadipour Nasser L
Department of Chemistry, Tarbiat Modares University, P.O. Box: 14115-175, Tehran, Iran.
Biophys Chem. 2007 Jun;128(1):38-45. doi: 10.1016/j.bpc.2007.03.002. Epub 2007 Mar 12.
A computational investigation was carried out to characterize the (17)O, (15)N and (13)C chemical shielding tensors in crystalline acetaminophen. We found that N-H...O and O-H...O hydrogen bonds around the acetaminophen molecule in the crystal lattice have different influences on the calculated (17)O, (15)N and (13)C chemical shielding eigenvalues and their orientations in the molecular frame of axes. The calculations were performed with the B3LYP method and 6-311++G(d, p) and 6-311+G(d) standard basis sets using the Gaussian 98 suite of programs. Calculated chemical shielding tensors were used to evaluate the (17)O, (15)N, and (13)C NMR chemical shift tensors in crystalline acetaminophen, which are in reasonable agreement with available experimental data. The difference between the calculated NMR parameters of the monomer and molecular clusters shows how much hydrogen-bonding interactions affect the chemical shielding tensors of each nucleus. The computed (17)O chemical shielding tensor on O(1), which is involved in two intermolecular hydrogen bonds, shows remarkable sensitivity toward the choice of the cluster model, whereas the (17)O chemical shielding tensor on O(2) involved in one N-H...O hydrogen bond, shows smaller improvement toward the hydrogen-bonding interactions. Also, a reasonably good agreement between the experimentally obtained solid-state (15)N and (13)C NMR chemical shifts and B3LYP/6-311++G(d, p) calculations is achievable only in molecular cluster model where a complete hydrogen-bonding network is considered. Moreover, at the B3LYP/6-311++G(d, p) level of theory, the calculated (17)O, (15)N and (13)C chemical shielding tensor orientations are able to reproduce the experimental values to a reasonably good degree of accuracy.
进行了一项计算研究,以表征结晶对乙酰氨基酚中(17)O、(15)N和(13)C的化学屏蔽张量。我们发现,晶格中对乙酰氨基酚分子周围的N-H...O和O-H...O氢键对计算得到的(17)O、(15)N和(13)C化学屏蔽本征值及其在分子轴系中的取向有不同影响。使用高斯98程序包,采用B3LYP方法以及6-311++G(d, p)和6-311+G(d)标准基组进行计算。计算得到的化学屏蔽张量用于评估结晶对乙酰氨基酚中的(17)O、(15)N和(13)C NMR化学位移张量,这与现有的实验数据合理吻合。单体和分子簇的计算NMR参数之间的差异表明氢键相互作用对每个原子核化学屏蔽张量的影响程度。参与两个分子间氢键的O(1)上计算得到的(17)O化学屏蔽张量对簇模型的选择表现出显著的敏感性,而参与一个N-H...O氢键的O(2)上的(17)O化学屏蔽张量对氢键相互作用的改善较小。此外,只有在考虑完整氢键网络的分子簇模型中,实验获得的固态(15)N和(13)C NMR化学位移与B3LYP/6-311++G(d, p)计算之间才能达成合理良好的一致性。此外,在B3LYP/6-311++G(d, p)理论水平上,计算得到的(17)O、(15)N和(13)C化学屏蔽张量取向能够以相当高的精度重现实验值。