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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Theoretical Study of the Formation of Mercury (Hg~(2+)) Complexes in Solution Using an Explicit Solvation Shell in Implicit Solvent Calculations
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Theoretical Study of the Formation of Mercury (Hg~(2+)) Complexes in Solution Using an Explicit Solvation Shell in Implicit Solvent Calculations

机译:隐式溶剂计算中使用显式溶剂壳形成溶液中汞(Hg〜(2+))配合物的理论研究

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摘要

The structures and harmonic vibrational frequencies of water clusters (H2O)_n, n = 1-10, have been computed using the M06-L/, B3LYP/, and CAM-BLYP/cc-pVTZ levels of theories. On the basis of the literature and our results, we use three hexamer structures of the water molecules to calculate an estimated "experimental" average solvation free energy of [Hg(H2O)6]~(2+). Aqueous formation constants (log K) for Hg~(2+) complexes, [Hg(L)_m(H2O)]~(2-mq), L = Cl~-, HO~-, HS~-, and S~(2-), are calculated using a combination of experimental (solvation free energies of ligands and Hg~(2+)) and calculated gas- and liquid-phase free energies. A combined approach has been used that involves attaching n explicit water molecules to the Hg~(2+) complexes such that the first coordination sphere is complete, then surrounding the resulting (Hg~(2+)-L_m)-(OH2)? cluster by a dielectric continuum, and using suitable thermodynamic cycles. This procedure significantly improves the agreement between the calculated log K values and experiment. Thus, for some neutral and anionic Hg(II) complexes, particularly Hg(II) metal ion surrounded with homo- or heteroatoms, augmenting implicit solvent calculations with sufficient explicit water molecules to complete the first coordination sphere is required—and adequate—to account for strong short-range hydrogen bonding interactions between the anion and the solvent. Calculated values for formation constants of Hg~(2+) complexes with S~(2+) and SH~ , are proposed. Experimental measurements of these log K values have been lacking or controversial.
机译:水团(H2O)_n(n = 1-10)的结构和谐波振动频率已使用理论的M06-L /,B3LYP /和CAM-BLYP / cc-pVTZ水平进行了计算。根据文献和我们的结果,我们使用水分子的三个六聚体结构来计算[Hg(H2O)6]〜(2+)的估计“实验”平均溶剂化自由能。 Hg〜(2+)配合物[Hg(L)_m(H2O)]〜(2-mq),L = Cl〜-,HO〜-,HS〜-和S〜的水形成常数(log K) (2-)是通过实验(配体和Hg〜(2+)的溶剂化自由能)和气相和液相自由能的组合来计算的。已经使用了一种组合方法,该方法涉及将n个明确的水分子连接到Hg〜(2+)配合物上,从而使第一个配位体完整,然后包围所得的(Hg〜(2 +)-L_m)-(OH2)2。通过介电连续体成簇,并使用适当的热力学循环。此过程显着改善了计算的log K值与实验之间的一致性。因此,对于某些中性和阴离子型Hg(II)配合物,尤其是被同原子或杂原子包围的Hg(II)金属离子,需要使用足够的显性水分子来增加隐式溶剂的计算量,以完成第一个配位域,这是足够的用于阴离子和溶剂之间的强短程氢键相互作用。提出了具有S〜(2+)和SH〜的Hg〜(2+)配合物形成常数的计算值。这些log K值的实验测量一直缺乏或存在争议。

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