Fukui Institute for Fundamental Chemistry, Kyoto University, Takano, Sakyo-ku, Kyoto, Japan.
Phys Chem Chem Phys. 2013 May 7;15(17):6368-81. doi: 10.1039/c3cp43892a.
One of the difficulties in application of the usual reference interaction site model self-consistent field (RISM-SCF) method to a highly polarized and bulky system arises from the approximate evaluation of electrostatic potential (ESP) with pure point charges. To improve this ESP evaluation, the ESP near a solute is directly calculated with a solute electronic wavefunction, that distant from a solute is approximately calculated with solute point charges, and they are connected with a switching function. To evaluate the fine solvation structure near the solute by incorporating the long-range solute-solvent Coulombic interaction with low computational cost, we introduced the dual solvent box protocol; one small box with the fine spacing is employed for the first and the second solvation shells and the other large box with the normal spacing is employed for long-range solute-solvent interaction. The levoglucosan formation from phenyl α- and β-d-glucosides under basic conditions is successfully inspected by this 3D-RISM-SCF method at the MP2 and SCS-MP2 levels, though the 1D-RISM-SCF could not be applied to this reaction due to the presence of highly polarized and bulky species. This 3D-RISM-SCF calculation reproduces the experimentally reported higher reactivity of the β-anomer. The 3D-RISM-SCF-calculated activation free energy for the β-anomer is closer to the experimental value than the PCM-calculated one. Interestingly, the solvation effect increases the difference in reactivity between these two anomers. The reason is successfully elucidated with 3D-RISM-SCF-calculated microscopic solvation structure and decomposition analysis of solute-solvent interaction.
应用通常的参考相互作用位点模型自洽场 (RISM-SCF) 方法于高度极化和庞大系统时的一个困难源于静电势 (ESP) 的近似评估与纯点电荷。为了改进此 ESP 评估,通过溶质的电子波函数直接计算溶质附近的 ESP,通过溶质点电荷近似计算远离溶质的 ESP,并用切换函数连接它们。为了通过用低计算成本合并长程溶质-溶剂库仑相互作用来精细评估溶质附近的溶剂化结构,我们引入了双溶剂盒方案;一个小盒子采用精细间距用于第一和第二溶剂化壳层,另一个大盒子采用正常间距用于长程溶质-溶剂相互作用。通过此 3D-RISM-SCF 方法在 MP2 和 SCS-MP2 水平下成功检查了碱性条件下苯基 α-和 β-D-葡萄糖苷的左旋葡萄糖形成,尽管由于存在高度极化和庞大的物质,1D-RISM-SCF 不能应用于此反应。此 3D-RISM-SCF 计算再现了实验报道的 β-异构体更高的反应性。与 PCM 计算相比,3D-RISM-SCF 计算的 β-异构体的活化自由能更接近实验值。有趣的是,溶剂化效应增加了这两个异构体之间反应性的差异。用 3D-RISM-SCF 计算的微观溶剂化结构和溶质-溶剂相互作用的分解分析成功地阐明了原因。