首页> 外文期刊>ECS Journal of Solid State Science and Technology >(061008)Electropolymerizable meso-Tetrakis Biphenyl-Bis(bithiophene) Zinc Porphyrin: Ground and Excited State Properties in Solution and in Films with Axially Coordinated C_(60)
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(061008)Electropolymerizable meso-Tetrakis Biphenyl-Bis(bithiophene) Zinc Porphyrin: Ground and Excited State Properties in Solution and in Films with Axially Coordinated C_(60)

机译:(061008)电聚合四四联苯双(联噻吩)锌卟啉:具有轴向配位的溶液和薄膜中的基态和激发态性质 C_(60)

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An electropolymerizable zinc porphyrin carrying eight entities of peripheral bithiophene, 4 was newly designed and synthesized. In this design, the bithiophene entities were separated by a biphenyl spacer to minimize ground state interactions perturbing porphyrin π-electronic structure. By multi-cyclic voltammetry, thin-films of 4 were formed on transparent FTO electrode and were characterized by optical, electrochemical and STM measurements. Further, the ability of zinc porphyrin in 4 to axially coordinate phenyl imidazole functionalized fullerene, C60Im both in solution and on the film interface was performed and characterized. Fluorescence quenching of zinc porphyrin both in solution and in the film was observed upon binding of C60Im. Femtosecond transient absorption studies revealed excited state charge separation for the dyad in solution wherein the measured rate of charge separation, kCS and charge recombination, kCR were found to be 2 × 10~(10) s~(?1) and 1.2 × 10~9 s~(?1) , respectively. In contrast, transient absorption studies performed on the dyad in the film were suggestive of energy transfer with minimal contributions from electron transfer. The present study brings out the importance of modulating photochemical reactivity of donor-acceptor dyad in film as compared to that in solution.
机译:新设计并合成了一种携带8个外围联噻吩4实体的可电聚合锌卟啉。在该设计中,联噻吩实体由联苯间隔区隔开,以尽量减少干扰卟啉π电子结构的基态相互作用。通过多循环伏安法,在透明FTO电极上形成4个薄膜,并通过光学、电化学和STM测量进行表征。此外,还对4中的卟啉锌在溶液和薄膜界面上与苯基咪唑官能化富勒烯C60Im轴向配位的能力进行了表征。在C60Im结合时,观察到溶液和薄膜中锌卟啉的荧光猝灭。飞秒瞬态吸收研究揭示了溶液中二元组的激发态电荷分离,其中电荷分离、kCS和电荷复合的测量速率kCR分别为2×10~(10)s~(?1)和1.2×10~9 s~(?1)。相比之下,对薄膜中的二元组进行的瞬态吸收研究表明能量转移,而电子转移的贡献很小。本研究揭示了与溶液相比,调节薄膜中供体-受体二元组的光化学反应性的重要性。

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