College of Chemical Engineering, Sichuan University, Chengdu, 610065, PR China.
Phys Chem Chem Phys. 2010 Feb 14;12(6):1341-50. doi: 10.1039/b908704d. Epub 2009 Dec 18.
This work presents a self-consistent thermodynamic approach to nonequilibrium solvation energy. By imposing an extra electric field onto the nonequilibrium solvation system, a constrained equilibrium state is prepared. New expressions of nonequilibrium solvation energy and solvent reorganization energy have been formulated. The numerical algorithm combining the new formulation with the dielectric polarizable continuum model has been implemented. As an application, self-exchange electron transfer (ET) reactions between tetramethylhydrazine, tetraethylhydrazine, and tetrapropylhydrazine and their corresponding radical cations have been investigated. The inner and solvent reorganization energies are calculated by the "four-point" method and the new method for nonequilibrium solvation, respectively. Besides, we also calculated the electronic coupling matrix. The rate constants for the three self-exchange ET reactions correlate well with experimental results. We have shown that the inner reorganization energies of these self-exchange ET are not very sensitive to compound size while the compound size has some effect on the solvent reorganization energy in acetonitrile. The new method for nonequilibrium solvation energy based on continuum model provides a reasonable result for the solvent reorganization energy.
本文提出了一种自洽的非平衡溶剂化能量热力学方法。通过向非平衡溶剂化系统施加额外的电场,制备了约束平衡态。已经推导出了非平衡溶剂化能量和溶剂重组能的新表达式。已经实现了将新公式与介电可极化连续体模型相结合的数值算法。作为应用,研究了四甲基肼、四乙基肼和四丙基肼及其相应的自由基阳离子之间的自交换电子转移(ET)反应。内重组能和溶剂重组能分别通过“四点”法和非平衡溶剂化的新方法进行计算。此外,我们还计算了电子耦合矩阵。这三个自交换 ET 反应的速率常数与实验结果很好地相关。我们表明,这些自交换 ET 的内重组能对化合物尺寸不敏感,而化合物尺寸对乙腈中的溶剂重组能有一定的影响。基于连续体模型的非平衡溶剂化能量新方法为溶剂重组能提供了合理的结果。