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Temperature Dependence of Charge Localization in High-Mobility, Solution-Crystallized Small Molecule Semiconductors Studied by Charge Modulation Spectroscopy

机译:电荷调制光谱研究高迁移率溶液结晶小分子半导体中电荷局域化的温度依赖性

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摘要

In solution-processable small molecule semiconductors, the extent of charge carrier wavefunction localization induced by dynamic disorder can be probed spectroscopically as a function of temperature using charge modulation spectroscopy (CMS). Here, it is shown based on combined fi eld-effect transistor and CMS measurements as a function of temperature that in certain molecular semiconductors, such as solution-processible pentacene, charge carriers become trapped at low temperatures in environments in which the charges become highly localized on individual molecules, while in some other molecules the charge carrier wavefunction can retain a degree of delocalization similar to what is present at room temperature. The experimental approach sheds new insight into the nature of shallow charge traps in these materials and allows identifying molecular systems in which intrinsic transport properties could, in principle, be observed at low temperatures if other transport bottlenecks associated with grain boundaries or contacts could be removed.
机译:在可溶液处理的小分子半导体中,可以使用电荷调制光谱(CMS)来根据温度对由动态无序引起的电荷载流子波函数定位的程度进行光谱探测。在此,根据场效应晶体管和CMS的组合测量结果显示,该测量结果是温度的函数,在某些分子半导体(例如可溶液处理的并五苯)中,载流子在低温下被俘获,在这种情况下电荷高度集中在单个分子上,电荷载流子函数可以保持一定程度的离域度,类似于在室温下存在的离域度。实验方法为这些材料中的浅电荷陷阱的性质提供了新的认识,并允许鉴定分子系统,如果可以消除与晶界或接触相关的其他传输瓶颈,原则上可以在低温下观察到固有的传输特性。

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