Schmidt Am Busch Marcel, Knapp Ernst-Walter
Department of Biology, Chemistry, and Pharmacy, Institute of Chemistry and Biochemistry, Free University of Berlin, Takustrasse 6, 14195 Berlin, Germany.
J Am Chem Soc. 2005 Nov 16;127(45):15730-7. doi: 10.1021/ja0526923.
We estimated one-electron reduction potentials of redox-active organic molecules for a spectrum of eight different functional groups (phenoxyl, p-benzoquinone, phenylthiyl, p-benzodithiyl, carboxyl, benzoyloxyl, carbthiyl, and benzoylthiyl) in protic (water) and aprotic (acetonitrile, N,N-dimethylacetamide) solvents. Electron affinities (EA) were evaluated in a vacuum with high level quantum chemical methods using Gaussian3-MP2 (G3MP2) and Becke 3 Lee, Yang, and Parr functional B3LYP with aug-cc-pVTZ basis set. To evaluate one-electron redox potentials, gas-phase free energies were combined with solvation energies obtained in a two-step computational approach. First, atomic partial charges were determined in a vacuum by the quantum chemical method B3LYP/6-31G(d,p). Second, solvation energies were determined, solving the Poisson equation with these atomic partial charges. Redox potentials computed this way, compared to experimental data for the 21 considered organic compounds in different solvents, yielded overall root-mean-square deviations of 0.058 and 0.131 V using G3MP2 or B3LYP to compute electronic energies, respectively, while B3LYP/6-31G(d,p) was used to compute solvation energies.
我们估算了一系列八种不同官能团(苯氧基、对苯醌、苯硫基、对苯二硫基、羧基、苯甲酰氧基、碳硫基和苯甲酰硫基)的氧化还原活性有机分子在质子性(水)和非质子性(乙腈、N,N-二甲基乙酰胺)溶剂中的单电子还原电位。使用高斯3-二阶微扰理论(G3MP2)以及带有aug-cc-pVTZ基组的贝克3李、杨和帕尔泛函B3LYP,通过高水平量子化学方法在真空中评估电子亲和能(EA)。为了评估单电子氧化还原电位,将气相自由能与通过两步计算方法获得的溶剂化能相结合。首先,通过量子化学方法B3LYP/6-31G(d,p)在真空中确定原子部分电荷。其次,利用这些原子部分电荷求解泊松方程来确定溶剂化能。与不同溶剂中21种被考虑的有机化合物的实验数据相比,以这种方式计算得到的氧化还原电位,分别使用G3MP2或B3LYP来计算电子能量时,总体均方根偏差为0.058和0.131 V,同时使用B3LYP/6-31G(d,p)来计算溶剂化能。