Takai Atsuro, Gros Claude P, Barbe Jean-Michel, Guilard Roger, Fukuzumi Shunichi
Department of Material and Life Science, Graduate School of Engineering, Osaka University and SORST (JST), 2-1 Yamada-oka, Suita, Osaka, Japan.
Chemistry. 2009;15(13):3110-22. doi: 10.1002/chem.200802166.
pi-pi assisted: Photoinduced electron transfer from cofacial porphyrin dimers to electron acceptors is prominently accelerated, whereas the back electron transfer is decelerated, relative to the corresponding porphyrin monomer (see figure).The radical cation of zinc tetrapentylporphyrin is dimerized with an excess of the neutral counterpart to form the dimer radical cation in which the unpaired electron is delocalized over both porphyrin rings. The dimeric radical cation exhibits an NIR absorption spectrum characteristic of weak pi-bond formation between the porphyrin rings. When cofacial porphyrin dimers, linked by different spacers, are oxidized such pi-bond formation between the porphyrin rings is also recognized in cyclic voltammetry, and Vis/NIR and ESR spectroscopic measurements. The dynamics of photoinduced electron transfer from the triplet excited states of cofacial porphyrin dimers to a series of electron acceptors were investigated by using laser flash photolysis measurements and compared with the porphyrin monomer. The rates of photoinduced electron-transfer reactions of cofacial porphyrin dimers are prominently accelerated compared with the reference monomer. The driving-force dependence of the rate constants of photoinduced electron-transfer reactions was analyzed in light of the Marcus theory of electron transfer to afford the reorganization energies of electron transfer (lambda). The lambda values of cofacial porphyrin dimers are significantly smaller than those of the porphyrin monomer when compared at the same driving force of the photoinduced electron transfer. The lambda values increase linearly with an increase in the driving force of the photoinduced electron transfer. This is accompanied by an increase in the distance between electron donor and acceptor molecules, where the electron transfer occurs. The enhanced electron-transfer properties of cofacial porphyrin dimers, in relation with the important role of the special pair in the photosynthetic reaction center, result from the smaller reorganization energy (lambda) together with the larger driving force of the photoinduced electron transfer due to the pi-electron delocalization in the dimer radical cations.
π-π辅助:相对于相应的卟啉单体,从共面卟啉二聚体到电子受体的光诱导电子转移显著加速,而反向电子转移则减速(见图)。四戊基锌卟啉的自由基阳离子与过量的中性对应物二聚化,形成二聚体自由基阳离子,其中未成对电子在两个卟啉环上离域。二聚体自由基阳离子呈现出卟啉环之间弱π键形成的近红外吸收光谱特征。当通过不同间隔基连接的共面卟啉二聚体被氧化时,在循环伏安法、可见/近红外和电子自旋共振光谱测量中也能识别出卟啉环之间的这种π键形成。通过激光闪光光解测量研究了共面卟啉二聚体三重激发态到一系列电子受体的光诱导电子转移动力学,并与卟啉单体进行了比较。与参考单体相比,共面卟啉二聚体的光诱导电子转移反应速率显著加速。根据电子转移的马库斯理论分析了光诱导电子转移反应速率常数对驱动力的依赖性,以获得电子转移的重组能(λ)。在相同的光诱导电子转移驱动力下进行比较时,共面卟啉二聚体的λ值明显小于卟啉单体的λ值。λ值随光诱导电子转移驱动力的增加而线性增加。这伴随着发生电子转移的供体和受体分子之间距离的增加。共面卟啉二聚体增强的电子转移性质,与特殊对在光合反应中心中的重要作用相关,是由于二聚体自由基阳离子中π电子离域导致重组能(λ)较小以及光诱导电子转移驱动力较大所致。