首页> 外文期刊>The Journal of Chemical Physics >Effect of the solvent density and species on the back-electron transfer rate in the hexamethylbenzene/tetracyanoethylene charge-transfer complex [Review]
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Effect of the solvent density and species on the back-electron transfer rate in the hexamethylbenzene/tetracyanoethylene charge-transfer complex [Review]

机译:溶剂密度和种类对六甲基苯/四氰基乙烯电荷转移复合物中背电子转移速率的影响[综述]

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The back-electron transfer (b-ET) process in the hexamethylbenzene/tetracyanoethylene charge-transfer complex was studied by the transient absorption spectroscopy in several fluids (ethane, nitrous oxide, carbon dioxide, and trifluoromethane) from the critical density to twice that of it at 323.2 K. The b-ET rate was determined by the decay rate of the excited state absorption. The b-ET rate increased with the increase of solvent density in carbon dioxide and nitrous oxide. The b-ET rate also increased in the order of ethane, nitrous oxide, carbon dioxide, and trifluoromethane, compared at the similar reduced density divided by the solvent critical density. Based on the formulation by Marcus and Jortner, the reaction free energy and the solvent reorganization energy were estimated from the change of the absorption spectrum relative to the gaseous phase spectrum, simply by assuming that the intramolecular reorganization energy does not depend on the solvent density and the species. The reaction free energy and the solvent reorganization energy in fluids obtained in this way were almost linearly correlated, and the density dependence was larger in the lower density region. The b-ET rates in various conditions showed a good correlation with the reaction free energy estimated from the spectral simulation. The b-ET rate showed a significant isotope effect by perdeuteriation of hexamethylbenzene as is predicted by the fluorescence quantum yield [K. Kulinowski et al., J. Phys. Chem. 99, 17715 (1995)], which could not be reproduced by this model. (C) 1998 American Institute of Physics. [S0021-9606(98)52604-9]. [References: 101]
机译:通过瞬态吸收光谱研究了几种流体(乙烷,一氧化二氮,二氧化碳和三氟甲烷)中从临界密度到临界密度的两倍的六甲基苯/四氰基乙烯电荷转移复合物中的背电子转移(b-ET)过程。 b-ET速率由激发态吸收的衰减速率确定。 b-ET速率随着二氧化碳和一氧化二氮中溶剂密度的增加而增加。与类似的降低密度除以溶剂临界密度相比,b-ET速率也按乙烷,一氧化二氮,二氧化碳和三氟甲烷的顺序增加。根据Marcus和Jortner的公式,仅通过假设分子内重组能不取决于溶剂密度和相对分子质量,就可以根据吸收光谱相对于气相光谱的变化估算反应自由能和溶剂重组能。该物种。以这种方式获得的流体中的反应自由能和溶剂重组能几乎线性相关,并且在较低密度区域中密度依赖性更大。在各种条件下,b-ET速率与光谱模拟估计的反应自由能显示出良好的相关性。 b-ET速率通过六甲基苯的氘化显示出显着的同位素效应,如荧光量子产率所预测的[K]。 Kulinowski等人,J.Phys。化学99,17715(1995)],此模型无法复制。 (C)1998美国物理研究所。 [S0021-9606(98)52604-9]。 [参考:101]

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