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首页> 外文期刊>Macromolecules >Donor-Acceptor Random versus Alternating Copolymers for Efficient Polymer Solar Cells: Importance of Optimal Composition in Random Copolymers
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Donor-Acceptor Random versus Alternating Copolymers for Efficient Polymer Solar Cells: Importance of Optimal Composition in Random Copolymers

机译:供体-受体无规与交替共聚物对高效聚合物太阳能电池的影响:无规共聚物中最佳组成的重要性

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The backbone composition of conjugated copolymers is of great importance in determining the conjugated structure and intermolecular assembly and in manipulating their optical, electrochemical, and electronic properties. However, limited attention has been directed at controlling the backbone composition of donor acceptor (D-A) type low bandgap polymers. Herein, we developed a series of D-A random copolymers (P(BDTT-r-DPP)) composed of different compositions of electron-rich (D) thienyl-substituted benzo[1,2-b:4,5-b']dithiophene (BDTT) and electron-deficient (A) pyrrolo[3,4-c]pyrrole-1,4-dione (DPP). The optical and electrical properties of D-A random copolymers could be controlled by tuning the ratios of BDTT to DPP (4:1, 2:1, 1:1, 1:2, and 1:4) in the polymer backbone; an increase in BDTT resulted in increased absorption in the range of 400-600 nm and a lower-lying highest occupied molecular orbital energy level, while a higher proportion of DPP induced stronger absorption in the range of 700-900 nm. The P(BDTT-r-DPP) copolymer with a D:A ratio of 2:1 produced the highest power conversion efficiency (PCE) of 5.63% in the polymer solar cells (PSCs), which outperformed the D-A alternating copolymer, P(BDTT-alt-DPP) (1:1)-based PSCs (PCE = 5.03%), because of the improved light absorption and open-circuit voltage. Thus, we highlight the importance of developing random copolymers with controlled D:A compositions for optimizing their optoelectronic properties and performances of PSCs. Also, we compared the polymer packing structure and the electrical properties between the P(BDTT-r-DPP) and P(BDTT-alt-DPP) copolymers and developed a quantitative understanding of the effect of the D:A monomer sequence on the structural, electrical, and photovoltaic properties of the D-A copolymers.
机译:共轭共聚物的主链组成对于确定共轭结构和分子间组装以及操纵它们的光学,电化学和电子性能非常重要。然而,对控制供体受体(D-A)型低带隙聚合物的主链组成的关注有限。本文中,我们开发了一系列由不同组成的富电子(D)噻吩基取代的苯并[1,2-b:4,5-b']二噻吩组成的DA无规共聚物(P(BDTT-r-DPP)) (BDTT)和缺电子的(A)吡咯并[3,4-c]吡咯-1,4-二酮(DPP)。 D-A无规共聚物的光学和电学性质可以通过调节聚合物主链中BDTT与DPP的比例(4:1、2:1、1:1、1:2和1:4)来控制。 BDTT的增加导致在400-600 nm范围内吸收增加,并且较低的最高占据分子轨道能级位于较低位置,而较高比例的DPP则在700-900 nm范围内引起较强的吸收。 D:A比为2:1的P(BDTT-r-DPP)共聚物在聚合物太阳能电池(PSC)中产生了5.63%的最高功率转换效率(PCE),其性能优于DA交替共聚物P(基于BDTT-alt-DPP(1:1)的PSC(PCE = 5.03%),因为它改善了光吸收和开路电压。因此,我们强调了开发具有受控D:A组成的无规共聚物以优化其光电性能和PSC性能的重要性。此外,我们比较了P(BDTT-r-DPP)和P(BDTT-alt-DPP)共聚物之间的聚合物堆积结构和电性能,并定量了解了D:A单体序列对结构的影响,DA共聚物的电学和光伏特性。

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