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首页> 外文期刊>Chemistry of Materials: A Publication of the American Chemistry Society >Effect of Systematically Tuning Conjugated Donor Polymer Lowest Unoccupied Molecular Orbital Levels via Cyano Substitution on Organic Photovoltaic Device Performance
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Effect of Systematically Tuning Conjugated Donor Polymer Lowest Unoccupied Molecular Orbital Levels via Cyano Substitution on Organic Photovoltaic Device Performance

机译:通过氰基取代系统调节共轭给体聚合物的最低未占据分子轨道水平对有机光伏器件性能的影响

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摘要

We report a systematic study into the effects of cyano substitution on the electron accepting ability of the common acceptor 4,7-bis(thiophen-2-yl)-2,1,3-benzothiadiazole (DTBT). We describe the synthesis of DTBT monomers with either 0, 1, or 2 cyano groups on the BT unit and their corresponding copolymers with the electron rich donor dithienogermole (DTG). The presence of the cyano group is found to have a strong influence on the optoelectronic properties of the resulting donor-acceptor polymers, with the optical band gap red-shifting by approximately 0.15 eV per cyano substituent. We find that the polymer electron affinity is significantly increased by similar to 0.25 eV upon addition of each cyano group, while the ionization potential is less strongly affected, increasing by less than 0.1 eV per cyano substituent. In organic photovoltaic (OPV) devices power conversion efficiencies (PCE) are almost doubled from around 3.5% for the unsubstituted BT polymer to over 6.5% for the monocyano substituted BT polymer. However, the PCE drops to less than 1% for the dicyano substituted BT polymer. These differences are mainly related to differences in the photocurrent, which varies by 1 order of magnitude between the best (1CN) and worst devices (2CN). The origin of this variation in the photocurrent was investigated by studying the charge generation properties of the photoactive polymer-fullerene blends using fluorescence and transient absorption spectroscopic techniques. These measurements revealed that the improved photocurrent of 1CN in comparison to 0CN was due to improved light harvesting properties while maintaining a high exciton dissociation yield. The addition of one cyano group to the BT unit optimized the position of the polymer LUMO level closer to that of the electron acceptor PC71BM, such that the polymer's light harvesting properties were improved without sacrificing either the exciton dissociation yield or device V-OC. We also identify that the drop in performance for the 2CN polymer is caused by very limited yields of electron transfer from the polymer to the fullerene, likely caused by poor orbital energy level alignment with the fullerene acceptor (PC71BM). This work highlights the impact that small changes in chemical structure can have on the optoelectronic and device properties of semiconducting polymer. In particular this work highlights the effect of LUMO-LUMO offset on the excited state dynamics of polymer-fullerene blends.
机译:我们报告系统研究的氰基取代对常见受体4,7-双(噻吩-2-基)-2,1,3-苯并噻二唑(DTBT)的电子接受能力的影响。我们描述了在BT单元上具有0、1或2个氰基的DTBT单体的合成及其与富电子供体二硫代no香酚(DTG)的相应共聚物的合成。发现氰基的存在对所得供体-受体聚合物的光电性能具有强烈影响,每个氰基取代基的光学带隙红移约0.15eV。我们发现,添加每个氰基后,聚合物电子亲和力显着提高了约0.25 eV,而电离电势受到的影响较小,每个氰基取代基的电离电势提高了小于0.1 eV。在有机光伏(OPV)器件中,功率转换效率(PCE)几乎翻了一番,从未取代的BT聚合物的约3.5%到单氰基取代的BT聚合物的6.5%以上。但是,对于二氰基取代的BT聚合物,PCE降至小于1%。这些差异主要与光电流差异有关,光电流差异在最佳设备(1CN)和最差设备(2CN)之间相差1个数量级。通过使用荧光和瞬态吸收光谱技术研究光敏聚合物-富勒烯共混物的电荷产生特性,研究了光电流中这种变化的起源。这些测量结果表明,与0CN相比,1CN的光电流有所改善,这是由于光收集性能得到了改善,同时保持了高激子解离产率。向BT单元中添加一个氰基可优化聚合物LUMO能级的位置,使其更接近电子受体PC71BM的位置,从而在不牺牲激子离解产率或装置V-OC的情况下提高了聚合物的光收集性能。我们还发现2CN聚合物的性能下降是由于从聚合物到富勒烯的电子转移的收率非常有限而引起的,这很可能是由于与富勒烯受体(PC71BM)的轨道能级对准不良造成的。这项工作强调了化学结构的微小变化可能对半导体聚合物的光电和器件性能产生的影响。特别是,这项工作突出了LUMO-LUMO补偿对聚合物-富勒烯共混物的激发态动力学的影响。

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