通过二次谐波发生(SHG)分析研究在空气-液体界面制备的高取向 P4T2F-HD 薄膜的各向异性电荷传输

Radhe Shyam, Takaaki Manaka and Rajiv Prakash
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引用次数: 0

摘要

本研究利用时间分辨显微光学二次谐波发生(TRM-SHG)成像技术,深入研究了由聚(4-噻吩-2-基-二氟苯并噻二唑)(P4T2F-HD)制成的单向排列薄膜的各向异性载流子传输特性。我们首次利用尚未开发的聚合物 P4T2F-HD,重点探索其独特的分子取向。这种方法为我们提供了一个独特的机会,可以在这种材料中研究电荷传输动态,而且具有极高的空间和时间精度。通过 SHG 成像,我们可以直接捕捉薄膜内载流子迁移率的方向依赖性,发现电子传输中的显著各向异性。我们采用的方法能够实时显示电荷的移动,从而对载流子的速度和沿不同方向的扩散进行定量评估。研究结果表明,载流子传输具有明显的方向偏好,这可归因于 P4T2F-HD 薄膜内的分子取向和堆积。研究人员根据材料的电子结构和分子取向对这种各向异性进行了细致分析,从而深入了解了推动有机半导体材料中电荷传输的力量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Anisotropic charge transport study of highly oriented P4T2F-HD thin film fabricated at air–liquid interface through second harmonic generation (SHG) analysis

Anisotropic charge transport study of highly oriented P4T2F-HD thin film fabricated at air–liquid interface through second harmonic generation (SHG) analysis

This study delves into the anisotropic carrier transport characteristics of unidirectionally aligned films made from poly(4-terthiophen-2-yl-difluorobenzothiadiazole) (P4T2F-HD) by using time-resolved microscopic optical second-harmonic generation (TRM-SHG) imaging. Utilizing the unexplored polymer P4T2F-HD for the first time, we focus on exploring its distinctive molecular orientation. This approach provides a unique opportunity to study charge transport dynamics with exceptional spatial and temporal precision within this material. Through SHG imaging, we can directly capture the directional dependency of carrier mobility within the films, uncovering a significant anisotropy in electronic transport. Our methodological approach enabled the visualization of charge movement in real-time, enabling quantitative assessments of carrier velocity and diffusion along distinct directions. The outcomes reveal a marked directional preference in carrier transport, which can be attributed to the molecular orientation and packing within the P4T2F-HD films. This anisotropy is meticulously analyzed in light of the material's electronic structure and molecular orientation, providing a thorough understanding of the forces propelling charge transport in organic semiconductor materials.

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