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Surface-Engineered Graphene Quantum Dots Incorporated into Polymer Layers for High Performance Organic Photovoltaics

机译:将表面工程化的石墨烯量子点结合到聚合物层中以实现高性能有机光伏

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摘要

Graphene quantum dots (GQDs), a newly emerging 0-dimensional graphene based material, have been widely exploited in optoelectronic devices due to their tunable optical and electronic properties depending on their functional groups. Moreover, the dispersibility of GQDs in common solvents depending on hydrophobicity or hydrophilicity can be controlled by chemical functionalization, which is particularly important for homogeneous incorporation into various polymer layers. Here we report that a surface-engineered GQD-incorporated polymer photovoltaic device shows enhanced power conversion efficiency (PCE), where the oxygen-related functionalization of GQDs enabled good dispersity in a PEDOT:PSS hole extraction layer, leading to significantly improved short circuit current density (Jsc) value. To maximize the PCE of the device, hydrophobic GQDs that are hydrothermally reduced (rGQD) were additionally incorporated in a bulk-heterojunction layer, which is found to promote a synergistic effect with the GQD-incorporated hole extraction layer.
机译:石墨烯量子点(GQD)是一种新兴的基于0维石墨烯的材料,由于其可调节的光学和电子特性(取决于其官能团),已被广泛用于光电器件中。而且,取决于疏水性或亲水性的GQD在普通溶剂中的分散性可以通过化学官能化来控制,这对于均匀地掺入各种聚合物层中特别重要。在这里,我们报告表面结合了GQD的聚合物光伏器件显示出更高的功率转换效率(PCE),其中与氧有关的GQD官能化使PEDOT:PSS空穴提取层具有良好的分散性,从而显着改善了短路电流密度(Jsc)值。为了使器件的PCE最大化,将水热还原的疏水GQD(rGQD)额外掺入了本体异质结层中,发现该物质可促进与掺入GQD的空穴提取层的协同效应。

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