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Polymer Photovoltaic Cells Based On Solution-processable Graphene And P3ht

机译:基于溶液可加工石墨烯和P3ht的聚合物光伏电池

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A soluble graphene, which has a one-atom thickness and a two-dimensional structure, is blended with poly(3-hexylthiophene) (P3HT) and used as the active layer in bulk heterojunction (BHJ) polymer photovoltaic celts. Adding graphene to the P3HT induces a great quenching of the photolumirrescence of the P3HT, indicating a strong electron/energy transfer from the P3HT to the graphene. In the photovoltaic devices with an ITO/PEDQT:PSS/P3HT:graphene/LiF/Al structure, the device efficiency increases first and then decreases with the increase in the graphene content. The device containing onJy 10wt % of graphene shows the best performance with a. power conversion efficiency of 1.1%, an open-circuit voltage of 0.72 V, a short-circuit current density of 4.0 mA cm~(-2), and a fill factor of 0,38 under simulated AM1.5G conditions at 100 mW cm~(-2) after an annealing treatment at 160℃ for 10 min. The annealing treatment at the appropriate temperature (160℃, for example) greatly improves the device performance; however, an annealing at overgenerous conditions such as at 210℃ results in a decrease in the device efficiency (0.57%). The morphology investigation shows that better performance can be obtained with a moderate content of graphene, which keeps good dispersion and interconnection. The functionalized graphene, which is cheap, easily prepared, stable, and inert against the ambient conditions, is expected to be a competitive candidate for the acceptor material in organic photovoltaic applications.
机译:将具有一个原子厚度和二维结构的可溶性石墨烯与聚(3-己基噻吩)(P3HT)共混,并用作本体异质结(BHJ)聚合物光伏电池中的活性层。将石墨烯添加到P3HT会引起P3HT的光致发光的极大猝灭,表明从P3HT到石墨烯的强电子/能量转移。在具有ITO / PEDQT:PSS / P3HT:石墨烯/ LiF / Al结构的光伏器件中,器件效率先增加,然后随着石墨烯含量的增加而降低。含有10wt%的石墨烯的器件显示出最佳性能。在100 mW cm的模拟AM1.5G条件下,功率转换效率为1.1%,开路电压为0.72 V,短路电流密度为4.0 mA cm〜(-2),填充系数为0.38 〜(-2)在160℃退火10分钟后。在适当的温度(例如160℃)下进行退火处理可以大大提高器件性能;但是,在过高的条件下(例如210℃)进行退火会导致器件效率降低(0.57%)。形态研究表明,适量的石墨烯可以获得更好的性能,保持良好的分散性和互连性。廉价,容易制备,稳定并且对环境条件惰性的功能化石墨烯有望成为有机光伏应用中受体材料的竞争候选物。

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