首页> 美国卫生研究院文献>International Journal of Molecular Sciences >Understanding the Electronic Structures and Absorption Properties of Porphyrin Sensitizers YD2 and YD2-o-C8 for Dye-Sensitized Solar Cells
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Understanding the Electronic Structures and Absorption Properties of Porphyrin Sensitizers YD2 and YD2-o-C8 for Dye-Sensitized Solar Cells

机译:了解染料敏化太阳能电池中卟啉增敏剂YD2和YD2-o-C8的电子结构和吸收特性

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摘要

The electronic structures and excitation properties of dye sensitizers determine the photon-to-current conversion efficiency of dye sensitized solar cells (DSSCs). In order to understand the different performance of porphyrin dye sensitizers YD2 and YD2-o-C8 in DSSC, their geometries and electronic structures have been studied using density functional theory (DFT), and the electronic absorption properties have been investigated via time-dependent DFT (TDDFT) with polarizable continuum model for solvent effects. The geometrical parameters indicate that YD2 and YD2-o-C8 have similar conjugate length and charge transfer (CT) distance. According to the experimental spectra, the HSE06 functional in TDDFT is the most suitable functional for describing the Q and B absorption bands of porphyrins. The transition configurations and molecular orbital analysis suggest that the diarylamino groups are major chromophores for effective CT excitations (ECTE), and therefore act as electron donor in photon-induced electron injection in DSSCs. The analysis of excited states properties and the free energy changes for electron injection support that the better performance of YD2-o-C8 in DSSCs result from the more excited states with ECTE character and the larger absolute value of free energy change for electron injection.
机译:染料敏化剂的电子结构和激发特性决定了染料敏化太阳能电池(DSSC)的光子-电流转换效率。为了了解卟啉染料敏化剂YD2和YD2-o-C8在DSSC中的不同性能,使用密度泛函理论(DFT)研究了它们的几何结构和电子结构,并通过时变DFT研究了电子吸收性能(TDDFT)具有可极化的连续体模型以实现溶剂效果。几何参数表明YD2和YD2-o-C8具有相似的共轭长度和电荷转移(CT)距离。根据实验光谱,TDDFT中的HSE06官能团是最适合描述卟啉Q和B吸收带的官能团。过渡构型和分子轨道分析表明,二芳基氨基是有效CT激发(ECTE)的主要发色团,因此在DSSC中由光子诱导的电子注入中充当电子供体。对电子注入的激发态性质和自由能变化的分析支持,DSSC中YD2-o-C8的更好性能归因于具有ECTE特性的激发态越多,电子注入的自由能变化的绝对值越大。

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