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侧链效应对低带隙共聚物溶液构象和电荷光生动力学的影响。

Side-chain effects on the solution-phase conformations and charge photogeneration dynamics of low-bandgap copolymers.

机构信息

Center for Condensed Matter Science and Technology, Department of Physics, Harbin Institute of Technology, Harbin 150001, China.

出版信息

J Chem Phys. 2013 Sep 28;139(12):124904. doi: 10.1063/1.4821751.

Abstract

Solution-phase conformations and charge photogeneration dynamics of a pair of low-bandgap copolymers based on benzo[1,2-b:4,5-b(')]dithiophene (BDT) and thieno[3,4-b]thiophene (TT), differed by the respective carbonyl (-C) and ester (-E) substituents at the TT units, were comparatively investigated by using near-infrared time-resolved absorption (TA) spectroscopy at 25 °C and 120 °C. Steady-state and TA spectroscopic results corroborated by quantum chemical analyses prove that both PBDTTT-C and PBDTTT-E in chlorobenzene solutions are self-aggregated; however, the former bears a relatively higher packing order. Specifically, PBDTTT-C aggregates with more π-π stacked domains, whereas PBDTTT-E does with more random coils interacting strongly at the chain intersections. At 25 °C, the copolymers exhibit comparable exciton lifetimes (1 ns) and fluorescence quantum yields (2%), but distinctly different charge photogeneration dynamics: PBDTTT-C on photoexcitation gives rise to a branching ratio of charge separated (CS) over charge transfer (CT) states more than 20% higher than PBDTTT-E does, correlating with their photovoltaic performance. Temperature and excitation-wavelength dependent exciton∕charge dynamics suggest that the CT states localize at the chain intersections that are survivable up to 120 °C, and that the excitons and the CS states inhabit the stretched strands and the also thermally robust orderly stacked domains. The stable self-aggregation structures and the associated primary charge dynamics of the PBDTTT copolymers in solutions are suggested to impact intimately on the morphologies and the charge photogeneration efficiency of the solid-state photoactive layers.

摘要

基于苯并[1,2-b:4,5-b(')]二噻吩(BDT)和噻吩[3,4-b]噻吩(TT)的一对低带隙共聚物的溶液相构象和电荷光生动力学,通过使用近红外时间分辨吸收(TA)光谱在 25°C 和 120°C 进行了比较研究。稳态和 TA 光谱结果通过量子化学分析得到证实,证明在氯苯溶液中,PBDTTT-C 和 PBDTTT-E 均自组装;然而,前者具有相对较高的堆积有序度。具体而言,PBDTTT-C 聚集体具有更多的π-π堆积域,而 PBDTTT-E 聚集体具有更多的随机卷曲,在链交叉处强烈相互作用。在 25°C 下,共聚物表现出相当的激子寿命(1 ns)和荧光量子产率(2%),但电荷光生动力学明显不同:PBDTTT-C 在光激发下产生的电荷分离(CS)与电荷转移(CT)态的分支比比 PBDTTT-E 高 20%以上,这与它们的光伏性能相关。温度和激发波长依赖性的激子/电荷动力学表明,CT 态定位于链交叉处,这些链交叉处可存活至 120°C,而激子和 CS 态则占据伸展的链段和也热稳定的有序堆积域。溶液中 PBDTTT 共聚物的稳定自组装结构和相关的初始电荷动力学被认为会对固态光活性层的形态和电荷光生效率产生密切影响。

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