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Utilizing Benzotriazole and Indacenodithiophene Units to Construct Both Polymeric Donor and Small Molecular Acceptors to Realize Organic Solar Cells With High Open-Circuit Voltages Beyond 1.2 V

机译:利用苯并三唑和茚环丁基噻吩单元,构建聚合物供体和小分子受体,以实现具有高出1.2 V的高开路电压的有机太阳能电池

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摘要

Devolopment of organic solar cells with high open-circuit voltage (VOC) and power conversion efficiency (PCE) simutaniously plays a significant role, but there is no guideline how to choose the suitable photovoltaic material combinations. In our previous work, we developed “the Same-Acceptor-Strategy” (SAS), by utilizing the same electron-accepting segment to construct both polymeric donor and small molecular acceptor. In this study, we further expend SAS to use both the same electron-accepting and electron-donating units to design the material combination. The p-type polymer of PIDT-DTffBTA is designed by inserting conjugated bridge between indacenodithiophene (IDT) and fluorinated benzotriazole (BTA), while the n-type small molecules of BTAx (x = 1, 2, 3) are obtained by introducing different end-capped groups to BTA-IDT-BTA backbone. PIDT-DTffBTA: BTAx (x = 1–3) based photovolatic devices can realize high VOC of 1.21–1.37 V with the very small voltage loss (0.55–0.60 V), while only the PIDT-DTffBTA: BTA3 based device possesses the enough driving force for efficient hole and electron transfer and yields the optimal PCE of 5.67%, which is among the highest value for organic solar cells (OSCs) with a VOC beyond 1.20 V reported so far. Our results provide a simple and effective method to obtain fullerene-free OSCs with a high VOC and PCE.
机译:有机太阳能电池具有高的开路电压(VOC)和功率转换效率(PCE)的发轫探索simutaniously起着显著的作用,但没有指导如何选择合适的光伏材料的组合。在我们以前的工作中,我们开发了“同 - 受体策略”(SAS),通过利用相同的电子接收段建设既聚合体和小分子受体。在这项研究中,我们进一步花费SAS同时使用相同的电子接受和电子给体单元来设计的材料组合。 PIDT-DTffBTA的p型聚合物是通过将indacenodithiophene(IDT)和氟化苯并三唑(BTA)之间共轭桥设计,而n型BTAx的小分子(X = 1,2,3)通过引入不同的获得封端的群体BTA-IDT-BTA骨干。 PIDT-DTffBTA:BTAx(X = 1-3)基于photovolatic设备可以实现1.21-1.37Ⅴ的高VOC与非常小的电压损失(0.55-0.60 V),而只有PIDT-DTffBTA:BTA3基于设备拥有足够驱动用于高效空穴和电子转移率和产率的力5.67%的最佳PCE,其是用于有机太阳能电池(OSC)与超越1.20伏的VOC的最高值之​​间报告为止。我们的研究结果提供了一个简单而有效的方法来获得免费的富勒烯有机太阳能电池具有高VOC和PCE。

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