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Strong modification of the transport level alignment in organic materials after optical excitation

机译:光激发后有机材料中传输能级排列的强烈改变

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摘要

Organic photovoltaic devices operate by absorbing light and generating current. These two processes are governed by the optical and transport properties of the organic semiconductor. Despite their common microscopic origin—the electronic structure—disclosing their dynamical interplay is far from trivial. Here we address this issue by time-resolved photoemission to directly investigate the correlation between the optical and transport response in organic materials. We reveal that optical generation of non-interacting excitons in a fullerene film results in a substantial redistribution of all transport levels (within 0.4 eV) of the non-excited molecules. As all observed dynamics evolve on identical timescales, we conclude that optical and transport properties are completely interlinked. This finding paves the way for developing novel concepts for transport level engineering on ultrafast time scales that could lead to novel functional optoelectronic devices.
机译:有机光伏器件通过吸收光并产生电流来工作。这两个过程受有机半导体的光学和传输特性支配。尽管它们具有共同的微观起源(电子结构),但揭示它们的动态相互作用并非易事。在这里,我们通过时间分辨的光发射来解决这个问题,以直接研究有机材料中光学和传输响应之间的相关性。我们揭示了在富勒烯薄膜中非相互作用激子的光学生成导致未激发分子的所有传输水平(在0.4 eV以内)的大量重新分布。由于所有观察到的动力学都在相同的时间尺度上演化,因此我们得出结论,光学和传输特性是完全相互联系的。这一发现为在超快速时间尺度上开发运输级工程学的新颖概念铺平了道路,这可能会导致新颖的功能性光电器件。

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