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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Excited-state dynamics of porphyrin-naphthalenediimide-porphyrin triads
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Excited-state dynamics of porphyrin-naphthalenediimide-porphyrin triads

机译:卟啉-萘二酰亚胺-卟啉三联体的激发态动力学

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The excited-state dynamics of two triads consisting of a naphthalenediimide (cNDI) substituted at the core by two zinc (ZnP) or free-base tetraphenylporphyrins (FbP) was investigated by ultrafast fluorescence and transient absorption spectroscopy. The electronic absorption spectra of the triads are almost the composites of those of the constituents, pointing to a weak electronic coupling and to a localization of the excitation energy on one of the porphyrins. In cyclohexane, the excited-state dynamics of the triads are essentially the same as those of the individual porphyrins, with the exception of the Soret emission of the ZnP triad, whose lifetime exhibits a more than 10 fold shortening compared to ZnP. A similarly ultrafast fluorescence decay was measured in tetrahydrofuran and benzonitrile. In these two solvents, charge separation from the excited porphyrin to the cNDI was found to take place with ~1 ps and ~25 ps time constants in the ZnP and FbP triads, respectively. The build up of the charge-separated state population in the ZnP triad is independent of the excitation wavelength, indicating that charge separation takes place from the lowest singlet excited state. Charge recombination occurs with a time constant of around 8 ps in both triads, i.e. it is slower than charge separation in the ZnP triad but faster in the FbP triad. These differences are rationalized in terms of the driving forces for charge separation and recombination.
机译:通过超快荧光和瞬态吸收光谱研究了由萘二酰亚胺(cNDI)在核心被两个锌(ZnP)或游离碱四苯基卟啉(FbP)取代的两个三单元组的激发态动力学。三单元组的电子吸收光谱几乎是这些组分的电子吸收光谱的组合,表明弱的电子耦合和激发能在卟啉之一上的局部化。在环己烷中,三单元组的激发态动力学与各个卟啉的激发态动力学基本相同,但ZnP三单元组的Soret发射除外,其寿命比ZnP缩短了10倍以上。在四氢呋喃和苄腈中测得了类似的超快荧光衰减。在这两种溶剂中,发现从ZnP和FbP三元组中的时间常数分别为〜1 ps和〜25 ps,从激发的卟啉到cNDI发生电荷分离。 ZnP三元组中电荷分离态种群的建立与激发波长无关,这表明电荷分离是从最低的单重态激发态发生的。电荷重组在两个三联体中以约8 ps的时间常数发生,即比ZnP三联体中的电荷分离慢,但在FbP三联体中则更快。这些差异在电荷分离和重组的驱动力方面是合理的。

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