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Photoionization and Photosensitized Electron-Transfer Reactions of Psoralens and Coumarins

机译:补骨脂素和香豆素的光电离和光敏电子转移反应

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摘要

The radical cations of several psoralens (furocoumarins) and coumarins have been generated via direct excitation (λ_(ex) = 355 nm) in aqueous solution and/or via photosensitized electron transfer in acetonitrile and characterized using transient absorption spectroscopy. Significant photoionization yields were observed for 8-methoxy-psoralen (8-MOP) and three methoxy-substituted coumarins in aqueous buffer and for 4, 5', 8-trimethylpsoralen in aqueous acetonitrile. Of those, 6, 7-dimethoxycoumarin (67-DMC) was found to have the highest quantum (02. ± 0.03) yield for photoionization in aqueous buffer following direct excitation at both 355 and 308 nm. Laser energy dependence plots for the photoionization process are linear and pass through (0, 0) for λ_(ex) = 355, 308, and 266 nm, providing strong evidence for a monophotonic process. The photoionization results are compared with both the one-electron oxidation potentials of the compounds (obtained via cyclic voltammetry) and the fluorescence quantum yields and lifetimes (obtained via single photon counting). The results demonstrate that photoionization is of general importance in psoralen and coumarin photochemistry and varies substantially in efficiency, depending on the structure, photophysical parameters, and environment of the substrate. The observation of photoionization upon low-intensity UVA irradiation is clearly significant with respect to the clinical use of these compounds in psoralen UVA therapy.
机译:几种补骨脂素(呋喃香豆素)和香豆素的自由基阳离子是通过水溶液中的直接激发(λ_(ex)= 355 nm)和/或乙腈中的光敏电子转移生成的,并使用瞬态吸收光谱法进行了表征。在水性缓冲液中观察到8-甲氧基-补骨脂素(8-MOP)和三种甲氧基取代的香豆素的显着光电离收率,在乙腈水溶液中观察到4,5',8-三甲基补骨脂素。其中,在355和308 nm处直接激发后,发现6- 7-二甲氧基香豆素(67-DMC)在水性缓冲液中进行光电离时具有最高的量子产率(02.±0.03)。光电离过程的激光能量依赖性图是线性的,并且对于λ_(ex)= 355、308和266 nm穿过(0,0),为单光子过程提供了有力的证据。将光电离的结果与化合物的单电子氧化电位(通过循环伏安法获得)以及荧光量子产率和寿命(通过单光子计数获得)进行比较。结果表明,光电离在补骨脂素和香豆素的光化学中具有普遍的重要性,并且其效率在很大程度上取决于基质的结构,光物理参数和环境。就这些化合物在补骨脂素UVA疗法中的临床应用而言,在低强度UVA照射下进行光电离的观察显然具有重要意义。

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