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Charge separation in localized and delocalized electronic states in polymeric semiconductors

机译:高分子半导体中局部和离域电子态的电荷分离

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Conjugated polymers such as poly(p-phenylene vinylene)s (PPVs) allow low-cost fabrication of thin semiconducting films by solution processing onto substrates. Several polymeric optoelectronic devices have been developed in recent years, including field-effect transistors, light-emitting diodes, photocells and lasers. It is still not clear, however, whether the description of electronic excitations in these materials is most appropriately formulated within a molecular or semiconductor (band-theory) picture. In the former case, excited states are localized and are described as excitons; in the latter they are delocalized and described as free electron-hole pairs. Here we report studies of the electronic states associated with optical excitations in the visible and ultraviolet range for the conjugated polymer poly(2-methoxy-5-(2'-ethyl-hexyloxy)-p-phenylene vinylene) (MEH-PPV), by means of photocurrent measurements and quantum-chemical calculations. We find several photocurrent spectral features between 3 and 5 eV which are coupled with bands in the absorption spectrum. On modelling the excited states in this energy range, we have discovered an important feature that is likely to be general for materials composed of coupled molecular units: that mixing of delocalized conduction- and valence-band states with states localized on the molecular units produces a sequence of excited states in which positive and negative charges can be separated further at higher energies. In other words, these excited states facilitate charge separation, and provide a conceptual bridge between the molecular (localized) and semiconductor (delocalized) pictures.
机译:共轭聚合物(例如聚对苯撑亚乙烯基)(PPV)可以通过在基板上进行溶液加工来低成本制造半导体薄膜。近年来已经开发了几种聚合物光电器件,包括场效应晶体管,发光二极管,光电管和激光器。但是,尚不清楚这些材料中的电子激发的描述是否最恰当地用分子或半导体(能谱)图来表述。在前一种情况下,激发态被局域化并被描述为激子。在后者中,它们被离域并描述为自由电子-空穴对。在这里,我们报告了与共轭聚合物聚(2-甲氧基-5-(2'-乙基-己氧基)-对亚苯基亚乙烯基)(MEH-PPV)在可见光和紫外线范围内的光激发相关的电子态的研究,通过光电流测量和量子化学计算。我们发现3到5 eV之间的几个光电流光谱特征与吸收光谱中的谱带耦合。在对该能量范围内的激发态进行建模时,我们发现了一个重要的特征,该特征对于由耦合分子单元组成的材料可能是通用的:将离域的导带和价带态与位于分子单元上的态混合会产生激发态的序列,其中高电荷能进一步分离正电荷和负电荷。换句话说,这些激发态有助于电荷分离,并在分子(局部)图像和半导体(局部)图像之间提供概念上的桥梁。

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