Department of Chemistry, Wesleyan University, Middletown, Connecticut 06459, United States.
J Phys Chem A. 2010 Nov 25;114(46):12299-304. doi: 10.1021/jp106088n. Epub 2010 Oct 28.
A more rigorous theoretical treatment of methods previously used to correlate computed energy values with experimental redox potentials, combined with the availability of well-developed computational solvation methods, results in a shift away from computing ionization potentials/electron affinities in favor of computing absolute reduction potentials. Seventy-nine literature redox potentials measured under comparable conditions from 51 alternant and nonalternant polycyclic aromatic hydrocarbons are linearly correlated with their absolute reduction potentials computed by density functional theory (B3LYP/6-31+G(d)) with SMD/IEF-PCM solvation. The resulting correlation is very strong (R(2) = 0.9981, MAD = 0.056 eV). When extrapolated to the x-intercept, the correlation results in an estimate of 5.17 ± 0.01 eV for the absolute potential of the ferrocene-ferrocenium redox couple in acetonitrile at 25 °C, indicating that this simple method can be used reliably for both calculating absolute redox potentials and for predicting relative redox potentials. When oxidation and reduction data are evaluated separately, the overall MAD value is improved by 50% to 0.028 eV, which improves relative potential predictions, but the computed values do not extrapolate to a reasonable estimate of the absolute potential of the ferrocene-ferrocenium ion reference.
先前用于将计算能量值与实验氧化还原电位相关联的方法的更严格的理论处理,结合成熟的计算溶剂化方法的可用性,导致从计算离子化能/电子亲合能转向有利于计算绝对还原电位。从 51 个交替和非交替多环芳烃中测量的 79 个文献氧化还原电位在可比条件下与通过密度泛函理论(B3LYP/6-31+G(d))计算的绝对还原电位通过 SMD/IEF-PCM 溶剂化线性相关。得到的相关性非常强(R²=0.9981,MAD=0.056 eV)。当外推到 x 截距时,该相关性导致在 25°C 下乙腈中 ferrocene-ferrocenium 氧化还原对的绝对电位估计值为 5.17±0.01 eV,表明该简单方法可用于可靠地计算绝对氧化还原电位和预测相对氧化还原电位。当分别评估氧化和还原数据时,整体 MAD 值提高了 50%,达到 0.028 eV,这提高了相对电位预测,但计算值无法外推到 ferrocene-ferrocenium 离子参比的合理绝对电位估计值。