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Reaction Pathways of the Electron Transfer from Photoexcited 10-Methylphenothiazines to Electron Acceptors in Polar Solvents. Effects of Magnetic Fields and Heavy Atoms on Efficiency of Free Ion Formation

化学 光化学 自由基离子 电子转移 单重态 离子 电子顺磁共振 激发态 溶剂化 三重态 电子受体 猝灭(荧光) 原子物理学 荧光 核磁共振 分子 有机化学 物理 量子力学
作者
Eriko Shimada,Masae Nagano,Makio Iwahashi,Yukie Mori,Yoshio Sakaguchi,Hisaharu Hayashi
出处
期刊:Journal of Physical Chemistry A [American Chemical Society]
卷期号:105 (13): 2997-3007 被引量:11
标识
DOI:10.1021/jp003322y
摘要

The lowest triplet excited states of (2-substituted) 10-methylphenothiazine were found to be quenched by various electron acceptors in polar solvents such as 2-propanol and acetonitrile through electron transfer (ET). The transient absorption and time-resolved EPR spectra indicated that the radical cation of the phenothiazine and radical anions of the acceptors were formed as the ET products in moderate to high yields. These free radical ions were formed via two types of intermediates, (i) a triplet contact radical ion pair (3CRIP) or a triplet exciplex (3Ex*) and (ii) a triplet solvent-separated radical ion pair (3SSRIP). In the quenching by the Br-substituted acceptors, a large fraction of 3CRIP (or 3Ex*) was deactivated to the singlet ground states due to the breakdown of the spin-forbiddance by strong spin−orbit coupling. On the other hand, 3CRIP (or 3Ex*) containing no heavy atom was mainly transformed into 3SSRIP by solvation. 3SSRIP decayed through either the separation to free ions or the triplet−singlet conversion followed by the spin-allowed backward ET to the ground states. The backward ET rates of 1SSRIPs were estimated to be ≥109 s-1, even when the reaction fell into the deeply inverted region. In 2-propanol, the free ion yields were affected by magnetic fields. The magnitudes of magnetically induced changes strongly depended on the polarity and viscosity of solvents, suggesting that the separation rate of SSRIP should be a crucial factor determining the field dependence of the free ion yields.
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