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通过溶液处理控制并五苯衍生物的微结构:结构各向异性对光电性能的影响。

Controlling microstructure of pentacene derivatives by solution processing: impact of structural anisotropy on optoelectronic properties.

机构信息

Department of Physics & Centre for Plastic Electronics, Imperial College London , London SW7 2AZ, United Kingdom.

出版信息

ACS Nano. 2013 Sep 24;7(9):7983-91. doi: 10.1021/nn403073d. Epub 2013 Aug 9.

DOI:10.1021/nn403073d
PMID:23919253
Abstract

The consideration of anisotropic structural properties and their impact on optoelectronic properties in small-molecule thin films is vital to understand the performance of devices incorporating crystalline organic semiconductors. Here we report on the important relationship between structural and optoelectronic anisotropy in aligned, functionalized-pentacene thin films fabricated using the solution-based zone-casting technique. The microstructure of thin films composed of 6,13-bis(triisopropylsilylethynyl)pentacene (TIPS-pentacene) and 6,13-bis(triethylsilylethynyl)pentacene (TES-pentacene) is systematically controlled by varying the casting speed. By controlling the structural alignment, we were able to experimentally decouple, for the first time in these films, an intramolecular absorption transition dipole (at ∼440 nm) oriented close to the pentacene short axis and an intermolecular absorption transition dipole (at ∼695 nm) oriented predominantly along the conjugated pentacene-pentacene core stacking axis (crystallographic a-axis) in both films. Using the intermolecular absorption as a signature for intermolecular delocalization, much higher optical dichroism was obtained in TES-pentacene (16 ± 6) than TIPS-pentacene (3.2 ± 0.1), which was attributed to the 1D packing structure of TES-pentacene compared to the 2D packing structure of TIPS-pentacene. This result was also supported by field-effect mobility anisotropy measurements of the films, with TES-pentacene exhibiting a higher anisotropy (∼21-47, depending on the casting speed) than TIPS-pentacene (∼3-10).

摘要

考虑各向异性结构性质及其对小分子薄膜光电性能的影响,对于理解包含结晶有机半导体的器件性能至关重要。在这里,我们报告了在使用基于溶液的分区浇铸技术制备的取向、功能化并五苯薄膜中,结构和光电各向异性之间的重要关系。由 6,13-双(三异丙基硅基乙炔基)并五苯(TIPS-并五苯)和 6,13-双(三乙基硅基乙炔基)并五苯(TES-并五苯)组成的薄膜的微结构通过改变浇铸速度得到系统控制。通过控制结构取向,我们首次在这些薄膜中实验性地分离了一个接近并五苯短轴的分子内吸收跃迁偶极子(在 ∼440nm 处)和一个主要沿共轭并五苯-并五苯核心堆积轴(晶状 a 轴)取向的分子间吸收跃迁偶极子(在 ∼695nm 处)。使用分子间吸收作为分子间离域的特征,在 TES-并五苯(16 ± 6)中获得了比 TIPS-并五苯(3.2 ± 0.1)高得多的光学二色性,这归因于 TES-并五苯的 1D 堆积结构与 TIPS-并五苯的 2D 堆积结构。薄膜的场效应迁移率各向异性测量也支持了这一结果,其中 TES-并五苯的各向异性(取决于浇铸速度,约为 21-47)高于 TIPS-并五苯(约为 3-10)。

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