染料敏化太阳能电池中熔融核修饰膨胀卟啉的近红外吸收。

M. I. Menéndez, Nicolás Montenegro-Pohlhammer, Ricardo Pino‐Rios, Rodrigo Urzúa-Leiva, Simone Morales-Lovera, Merlys Borges-Martínez, Kevin Granados-Tavera, R. López, G. Cárdenas-Jirón
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引用次数: 1

摘要

利用密度泛函理论(DFT)和时变DFT研究了含两个吡咯、一个二噻吩(DTT)单元和1-4噻吩(1-4)的熔融核修饰扩展卟啉的光物理、光电和电荷输运性质。化合物1-3之前已经进行了实验研究,但化合物4是一个理论建议,其光物理特征与从1到3推断的相匹配。它们的Q波段在700-970 nm范围内吸收,Soret波段在500-645 nm范围内吸收。在扩展的卟啉环中,放置在DTT装置前面的噻吩环的上升引起最长吸收波长的色移,导致近红外吸收,占太阳能的49%。所有的体系都表现出从染料到TiO2的电子注入和在有限TiO2模型上的吸附的热力学有利过程。当使用I-/I3-电解质时,染料的电子再生仅对最小的膨胀卟啉1和2具有热力学可行性。电荷输运研究表明,在低于0.4 V的电压下,含有五葡萄素1和八葡萄素4的结比含有六葡萄素2和七葡萄素3的结导电性更好。结果表明,所研究的四种熔融核修饰的扩展卟啉是染料敏化太阳能电池中潜在的染料,主要是五葡萄素1和六葡萄素2。此外,增加大环中噻吩环的数量证明有利于近红外区域的吸收,这是染料敏化太阳能电池所高度期望的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Near-infrared absorption of fused core-modified expanded porphyrins for dye-sensitized solar cells.
Photophysical, photovoltaic, and charge transport properties of fused core-modified expanded porphyrins containing two pyrroles, one dithienothiophene (DTT) unit, and 1-4 thiophenes (1-4) were inspected by using density functional theory (DFT) and time-dependent DFT. Compounds 1-3 have been investigated experimentally before, but 4 is a theoretical proposal whose photophysical features match those extrapolated from 1 to 3. They exhibit absorption in the range of 700-970 nm for their Q bands and 500-645 nm for their Soret bands. The rise of thiophene rings placed in front of the DTT unit in the expanded porphyrin ring causes a bathochromic shift of the longest absorption wavelength, leading to near-infrared absorptions, which represent 49% of the solar energy. All the systems show a thermodynamically favorable process for the electron injection from the dye to TiO2 and adsorption on a finite TiO2 model. The electron regeneration of the dye is only thermodynamically feasible for the smallest expanded porphyrins 1 and 2 when I-/I3- electrolyte is used. The charge transport study shows that for voltages lower than 0.4 V, junctions featuring pentaphyrin 1 and octaphyrin 4 are more conductive than those containing hexaphyrin 2 or heptaphyrin 3. The results showed that the four fused core-modified expanded porphyrins investigated are potential dyes for applications in dye-sensitized solar cells, mainly pentaphyrin 1 and hexaphyrin 2. Moreover, increasing the number of thiophene rings in the macrocycle proved fruitful in favoring absorption in the near-infrared region, which is highly desired for dye-sensitized solar cells.
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