Nagy Peter I, Erhardt Paul W
Center for Drug Design and Development, College of Pharmacy, The University of Toledo, Toledo, Ohio 43606-3390, USA.
J Phys Chem A. 2008 May 8;112(18):4342-54. doi: 10.1021/jp7108847. Epub 2008 Mar 29.
Hydrogen bonding was studied in 24 pairs of isopropyl alcohol and phenol as one partner, and water and amino-acid mimics (methanol, acetamide, neutral and protonated imidazole, protonated methylalamine, methyl-guanidium cation, and acetate anion) as the other partner. MP2/6-31+G* and MP2/aug-cc-pvtz calculations were conducted in the gas phase and in a model continuum dielectric environment with dielectric constant of 15.0. Structures were optimized in the gas phase with both basis sets, and zero-point energies were calculated at the MP2/6-31+G* level. At the MP2/aug-cc-pvtz level, the BSSE values from the Boys-Bernardi counterpoise calculations amount to 10-20 and 5-10% of the uncorrected binding energies of the neutral and ionic complexes, respectively. The geometry distortion energy upon hydrogen-bond formation is up to 2 kcal/mol, with the exception of the most strongly bound complexes. The BSSE-corrected MP2/aug-cc-pvtz binding energy of -27.56 kcal/mol for the gas-phase acetate...phenol system has been classified as a short and strong hydrogen bond (SSHB). The CH3NH3+...isopropyl alcohol complex with binding energy of -22.54 kcal/mol approaches this classification. The complete basis set limit (CBS) for the binding energy was calculated for twelve and six complexes on the basis of standard and counterpoise-corrected geometry optimizations, respectively. The X...Y distances of the X-H...Y bridges differ by up to 0.03 A as calculated by the two methods, whereas the corresponding CBS energy values differ by up to 0.03 kcal/mol. Uncorrected MP2/aug-cc-pvtz hydrogen-bonding energies are more negative by up to 0.35 kcal/mol than the MP2/CBS values, and overestimate the CCSD(T)/CBS binding energies generally by up to 5% for the eight studied complexes in the gas phase. The uncorrected MP2/aug-cc-pvtz binding energies decreased (in absolute value) by 11-18 kcal/mol for the ionic species and by up to 5 kcal/mol for the neutral complexes when the electrostatic effect of a polarizable model environment was considered. The DeltaECCSD(T) - DeltaEMP2 corrections still remained close to their gas-phase values for four complexes with 0, +/-1 net charges. Good correlations (R2 = 0.918-0.958) for the in-environment MP2/aug-cc-pvtz and MP2/6-31+G* hydrogen-bonding energies facilitate the high-level prediction of these energies on the basis of relatively simple MP2/6-31+G* calculations.
对24对氢键体系进行了研究,其中一对是异丙醇和苯酚,另一对是水和氨基酸类似物(甲醇、乙酰胺、中性和质子化咪唑、质子化甲胺、甲基胍阳离子和醋酸根阴离子)。在气相和介电常数为15.0的连续介质模型环境中进行了MP2/6-31+G和MP2/aug-cc-pvtz计算。使用这两种基组在气相中对结构进行了优化,并在MP2/6-31+G水平计算了零点能。在MP2/aug-cc-pvtz水平下,Boys-Bernardi抵消计算得到的基组重叠误差(BSSE)值分别占中性和离子配合物未校正结合能的10%-20%和5%-10%。除了结合最强的配合物外,氢键形成时的几何畸变能高达2 kcal/mol。气相醋酸根……苯酚体系经BSSE校正后的MP2/aug-cc-pvtz结合能为-27.56 kcal/mol,已被归类为短而强的氢键(SSHB)。结合能为-22.54 kcal/mol的CH3NH3+……异丙醇配合物接近这一分类。分别基于标准和抵消校正的几何优化,计算了12个和6个配合物的结合能完全基组极限(CBS)。两种方法计算的X-H……Y桥的X……Y距离相差高达0.03 Å,而相应的CBS能量值相差高达0.03 kcal/mol。未校正的MP2/aug-cc-pvtz氢键能比MP2/CBS值更负,高达0.35 kcal/mol,对于气相中的8个研究配合物,未校正的MP2/aug-cc-pvtz结合能通常高估CCSD(T)/CBS结合能达5%。考虑极化模型环境的静电效应时,离子物种的未校正MP2/aug-cc-pvtz结合能(绝对值)降低了11-18 kcal/mol,中性配合物降低了高达5 kcal/mol。对于净电荷为0、±1的四个配合物,DeltaECCSD(T)-DeltaEMP2校正仍接近其气相值。环境中MP2/aug-cc-pvtz和MP2/6-31+G氢键能之间的良好相关性(R2 = 0.918-0.958)有助于基于相对简单的MP2/6-31+G计算对这些能量进行高水平预测。