首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >A Multitechnique Physicochemical Investigation of Various Factors Controlling the Photoaction Spectra and of Some Aspects of the Electron Transfer for a Series of Push—Pull Zn(II) Porphyrins Acting as Dyes in DSSCs
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A Multitechnique Physicochemical Investigation of Various Factors Controlling the Photoaction Spectra and of Some Aspects of the Electron Transfer for a Series of Push—Pull Zn(II) Porphyrins Acting as Dyes in DSSCs

机译:在DSSC中充当染料的一系列推挽式Zn(II)卟啉的多种控制光作用谱的因素和电子转移某些方面的多物理化学研究

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摘要

A multitechnique physicochemical comparative investigation involving TDD FT theoretical calculations, steady-state and time-resolved electronic absorption spectra, and electrochemical and photoelectrochemical investigations was carried out on a family of push—pull porphyrinic sensitizers ([5-(4'-carboxy-phenylethynyl)-15-(4"-methoxy-phenylefhynyl)-10,20-bis(3,5-di-tert-butylphenyl)porphynnate]Zn(II) (1) and [5-(4'-carboxy-phe-nylethynyl)-15-(4''-N,N-dimethylamno--phenylethynyl)-10,20-bis-(3,5-di-tert-butylphenyl)porphyrinate]Zn(II) (2) and the new fluorinated porphyrinic dye [5-(4'-carboxy-2',3',5',6'-tetrafluoro- phenylethynyl)-15-(4"-N,N-dimethylamino-phenylethynyl)-10,20-bis(3,5-di-tert-butylphenyl)porphyrinate]Zn(Ii) (3)) with the aim of identifying the structurally related electronic properties at the basis of efficient interfacial charge separation. We found for all dyes a photoconversion nearly twice more effective for the B band than for the Q band, which could not be explained only by considerations based on the electron collection efficiency but also by a more energetically favorable electron injection from the S2 excited state. The lower photoconversion of the fluorinated dye 3, when compared to dyes 1 and 2, was explained not only by a more difficult absorption on the TiO2 photoanode but also by a lower electron injection efficiency and a less successful hole transfer to the electrolyte, leading to increased charge recombination.
机译:对一系列推挽卟啉敏化剂([5-(4'-羧基-苯基乙炔基)进行了多技术物理化学比较研究,涉及TDD FT理论计算,稳态和时间分辨电子吸收光谱以及电化学和光电化学研究)-15-(4“-甲氧基-苯基苯基)-10,20-双(3,5-二叔丁基苯基)卟啉] Zn(II)(1)和[5-(4'-羧基-phe- nylethynyl)-15-(4''-N,N-methylamno--phenylethynyl)-10,20-bis-(3,5-di-tert-butyl-butylphenyl)porphyrinate] Zn(II)(2)和新的氟化卟啉染料[5-(4'-羧基-2',3',5',6'-四氟-苯基乙炔基)-15-(4“ -N,N-二甲基氨基-苯基乙炔基)-10,20-双(3 (5-二叔丁基苯基)卟啉酸酯] Zn(II)(3)),目的是在有效的界面电荷分离的基础上鉴定与结构相关的电子性质。我们发现,对于所有染料来说,B波段的光转换效率都比Q波段高近两倍,这不能仅仅通过基于电子收集效率的考虑来解释,而且不能通过从S2激发态获得更有利的电子注入来解释。与染料1和2相比,氟化染料3的较低的光转化率不仅可以通过在TiO2光电阳极上更困难的吸收来解释,还可以通过较低的电子注入效率和较不成功的空穴转移到电解质中来解释。电荷重组增加。

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