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Twisted coumarin dyes for dye-sensitized solar cells with high photovoltage: adjustment of optical, electrochemical, and photovoltaic properties by the molecular structure

机译:具有高光电电池的染料敏化太阳能电池的扭曲香豆素染料:通过分子结构调节光学,电化学和光伏性能

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The general drawback of coumarin dye dye-sensitized solar cells (DSSCs) is their relatively low photovoltage. According to our previous experience, the twisted molecular structure is beneficial for the prevention of π-aggregation. Thus, in order to further individually evaluate the effect of twisted and curved structures on optical, electrochemical, and photovoltaic properties, herein, rational molecular design has been performed to develop three simple coumarin dyes, coded as CS-3 , CS-4 , and CS-5 . For CS-3 , overlarge dihedral angles seriously twist the molecular skeleton and affect the intramolecular charge transfer process, leading to the poorest light-harvesting capability among the three dyes. More importantly, with a highly twisted structure, the charge recombination rate of CS-3 is obviously accelerated. In contrast, with an appropriate twisted and curved structure, CS-4 shows better light-harvesting capability than CS-3 , as well as a better prevention effect of charge recombination. As a result, a high photovoltage of 704 mV is obtained by CS-4 based DSSCs even without a co-adsorbent. Accordingly, our finding demonstrates that although the breakage of molecular coplanarity may weaken the light-harvesting capability and decrease the photocurrent, an appropriate twisted and curved molecular structure is still greatly favorable for the improvement of photovoltage, providing a powerful strategy for the future development of organic sensitizers with high photovoltage.
机译:香豆素染料染料敏化太阳能电池(DSSCs)的一般缺点是它们相对低的光电电压。根据我们以前的经验,扭曲的分子结构有利于预防π聚集。因此,为了进一步单独评估扭曲和弯曲结构对光学,电化学和光伏性能的影响,本文已经进行了合理的分子设计,以开发三种简单的香豆素染料,编码为CS-3,CS-4和CS-5。对于CS-3,覆盖二合一角度严重扭曲分子骨架并影响分子内电荷转移过程,导致三种染料中最糟糕的光收获能力。更重要的是,具有高度扭曲的结构,CS-3的电荷重组率明显加速。相反,通过适当的扭曲和弯曲结构,CS-4显示比CS-3更好的光收获能力,以及电荷重组的更好的预防效果。结果,即使没有共吸收剂,CS-4基于CS-4的DSSC,高光伏的704mV。因此,我们的发现表明,尽管分子共面的破损可能削弱光收获能力并降低光电流,但相应的扭曲和弯曲的分子结构仍然极大地利用了光伏的改善,为未来发展提供了强大的策略有机敏感剂高光电。

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