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Complementary hydrogen bonding and block copolymer self-assembly in cooperation toward stable solar cells with tunable morphologies

机译:互补的氢键结合和嵌段共聚物自组装,共同形成形态可调的稳定太阳能电池

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We report the synthesis and characterization of a polythiophene diblock copolymer selectively functionalized with 1-n-hexylisoorotic acid moieties (P4) and a 2,6-diaminopyridine tethered fullerene derivative (PCBP). Self-assembly between P4 and PCBP through "three-point" complementary hydrogen bonding interactions is utilized to control and stabilize blend morphologies. These interactions have been studied both in solution and in solid state by 1H NMR and UV-vis spectroscopies as well as optical and atomic force microscopies (AFM). Solar cells employing P4 blended with different weight ratios of PCBP and phenyl-C61-butyric acid methyl ester (PCBM) were fabricated and tested. The best power conversion efficiencies (PCEs) were observed in devices made from P4/PCBP blends (10/8 by wt) and ternary blends of P4/PCBP/PCBM (10/4/4 by wt) as active layers. Thermal stabilities of these solar cells were studied in detail by aging tests, and corresponding morphological changes were closely monitored by absorption spectroscopy, optical microscopy, AFM, and X-ray analyses. The "three-point" complementary hydrogen bonding interactions between P4 and PCBP, in cooperation with block polymer self-assembly, were found to not only improve the thermal stability of solar cells significantly but also lead to tunable active layer morphologies. Nanostructures with long-range order were identified in blend films employing P4, which has never been observed before in conventional polymer/fullerene bulk heterojunction (BHJ) films.
机译:我们报告了合成和表征的聚噻吩二嵌段共聚物选择性地功能化的1-n-己基异同乳清酸部分(P4)和2,6-二氨基吡啶系留的富勒烯衍生物(PCBP)。通过“三点”互补氢键相互作用,P4和PCBP之间的自组装可用于控制和稳定共混物形态。这些相互作用已通过1H NMR和UV-vis光谱以及光学和原子力显微镜(AFM)在溶液和固态中进行了研究。制备并测试了采用掺有不同重量比的PCBP和苯基-C61-丁酸甲酯(PCBM)的P4的太阳能电池。在由P4 / PCBP共混物(10/8 wt)和P4 / PCBP / PCBM三元共混物(10/4/4 wt)作为活性层制成的器件中观察到了最佳的功率转换效率(PCE)。通过老化测试详细研究了这些太阳能电池的热稳定性,并通过吸收光谱,光学显微镜,AFM和X射线分析密切监测了相应的形态变化。发现P4和PCBP之间的“三点”互补氢键相互作用与嵌段聚合物的自组装协同作用,不仅显着提高了太阳能电池的热稳定性,而且导致了可调节的活性层形貌。在使用P4的共混膜中鉴定出具有长程有序的纳米结构,这在传统的聚合物/富勒烯本体异质结(BHJ)膜中从未见过。

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