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Electrostatic Interactions Shape Molecular Organization and Electronic Structure of Organic Semiconductor Blends

机译:静电相互作用形状分子组织与有机半导体混合的电子结构

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Halogenation of conjugated molecules represents a powerful approach to tune the electronic structure of molecular thin films through inductive effects and long-range intermolecular electrostatic interactions. The mixing of halogenated molecules with their pristine counterparts has recently proven successful in altering the blend's energy levels to adjust the open-circuit voltage of organic solar cells by the mixing ratio. Here, we show that the prevailing rationale for this effect is not equally valid for different molecular orientations. We provide a comprehensive experimental and theoretical analysis of the prototypical blend formed by pentacene and perfluoropentacene to relate structure with electronic properties. We find a mixed-stack structural motif in standing and lying orientations depending on the substrate nature. In the standing orientation, the ionization potential lies in between the values of the pure components, in line with the established picture of averaged molecular quadrupole moments. For the lying orientation, however, we experimentally observe an ionization potential lower than both pristine values, which seems at odds with this simple rationale. Electrostatic simulations based on the knowledge of the atomistic structure of the films capture the complex experimental scenario for both orientations. In particular, the ultralow ionization potential of films formed by lying molecules is identified as a signature of the monolayer structure, where quadrupolar interactions are responsible for a difference of ca. 0.4 eV in the highest occupied molecular orbital energy as compared to thicker films with the same molecular orientation.
机译:共轭分子的卤化是通过感应效应和远分子间静电相互作用来调谐分子薄膜的电子结构的强大方法。最近经过证明,卤化分子与原始对应物的混合已经成功地改变混合的能量水平以通过混合比调节有机太阳能电池的开路电压。在这里,我们表明这种效果的主要基本原理对于不同的分子取向并不同样有效。我们提供了由五烯烯和全氟化萘形成的原型混合物进行了全面的实验和理论分析,以使电子性能相关的结构。我们在站立和躺着取决于基材性质的情况下找到混合堆叠​​结构图案。在立式方向上,电离电位在纯组分的值之间,符合平均分子四极血肿矩的已建立的图像。然而,对于谎言定向,我们通过对这种简单的理由进行了实验观察低于原始值的电离电位。基于薄膜原子结构知识的静电模拟捕获两种方向的复杂实验场景。特别地,通过序列分子形成的薄膜的超级电离电位被鉴定为单层结构的签名,其中Quadrupolar相互作用负责CA的差异。与具有相同分子取向的厚膜相比,在最高占用的分子轨道能量中为0.4eV。

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