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Boosting Photon Harvesting in Organic Solar Cells with Highly Oriented Molecular Crystals via Graphene-Organic Heterointerface

机译:通过石墨烯-有机异质界面促进具有高度取向的分子晶体的有机太阳能电池中的光子收集

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摘要

Photon harvesting in organic solar cells is highly dependent on the anisotropic nature of the optoelectronic properties of photoactive materials. Here, we demonstrate an efficient approach to dramatically enhance photon harvesting in planar heterojunction solar cells by using a graphene-organic heterointerface. A large area, residue-free monolayer graphene is inserted at anode interface to serve as an atomically thin epitaxial template for growing highly orientated pentacene crystals with lying-down orientation. This anisotropic orientation enhances the overall optoelectronic properties, including light absorption, charge carrier lifetime, interfacial energetics, and especially the exciton diffusion length. Spectroscopic and crystallographic analysis reveal that the lying-down orientation persists until a thickness of 110 nm, which, along with increased exciton diffusion length up to nearly 100 nm, allows the device optimum thickness to be doubled to yield significantly enhanced light absorption within the photoactive layers. The resultant photovoltaic performance shows simultaneous increment in V-oc,J(sc), and FF, and consequently a 5 times increment in the maximum power conversion efficiency than the equivalent devices without a graphene layer. The present findings indicate that controlling organic-graphene heterointerface could provide a design strategy of organic solar cell architecture for boosting photon harvesting.
机译:有机太阳能电池中的光子收集高度依赖于光敏材料的光电特性的各向异性。在这里,我们展示了一种有效的方法,可通过使用石墨烯-有机异质界面显着增强平面异质结太阳能电池中的光子收集。在阳极界面处插入大面积,无残渣的单层石墨烯,以用作原子薄的外延模板,以生长具有躺卧取向的高度取向的并五苯晶体。这种各向异性的取向增强了整个光电性能,包括光吸收,电荷载流子寿命,界面能,特别是激子扩散长度。光谱和晶体学分析表明,躺下的取向一直持续到厚度为110 nm为止,再加上激子扩散长度增加到近100 nm,使器件的最佳厚度增加了一倍,从而显着提高了光敏材料内的光吸收层。所得的光伏性能显示V-oc,J(sc)和FF同时增加,因此,与没有石墨烯层的等效器件相比,最大功率转换效率增加了5倍。目前的发现表明,控制有机-石墨烯异质界面可以提供一种有机太阳能电池架构的设计策略,以促进光子的收集。

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