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水面拖拽涂层:通往具有增强电荷传输性能的高质量共轭小分子薄膜的新途径。

Water-Surface Drag Coating: A New Route Toward High-Quality Conjugated Small-Molecule Thin Films with Enhanced Charge Transport Properties.

作者信息

Deng Wei, Xiao Yanling, Lu Bei, Zhang Liang, Xia Yujian, Zhu Chenhui, Zhang Xiujuan, Guo Jinghua, Zhang Xiaohong, Jie Jiansheng

机构信息

Institute of Functional Nano & Soft Materials (FUNSOM), Jiangsu Key Laboratory for Carbon-Based Functional Materials & Devices, Soochow University, Suzhou, Jiangsu, 215123, P. R. China.

Advanced Light Source, Lawrence Berkeley National Laboratory, Berkeley, CA, 94720, USA.

出版信息

Adv Mater. 2021 Feb;33(5):e2005915. doi: 10.1002/adma.202005915. Epub 2020 Dec 18.

Abstract

Electronic properties of organic semiconductor (OSC) thin films are largely determined by their morphologies and crystallinities. However, solution-processed conjugated small-molecule OSC thin films usually exhibit abundant grain boundaries and impure grain orientations because of complex fluid dynamics during solution coating. Here, a novel methodology, water-surface drag coating, is demonstrated to fabricate high-quality OSC thin films with greatly enhanced charge transport properties. This method utilizes the water surface to alter the evaporation dynamics of solution to enlarge the grain size, and a unique drag-coating process to achieve the unidirectional growth of organic crystals. Using 2,8-difluoro-5,11-bis(triethylsilylethynyl)anthradithiophene (Dif-TES-ADT) as an example, thin films with millimeter-sized single-crystal domains and pure crystallographic orientations are achieved, revealing a significant enhancement (4.7 times) of carrier mobility. More importantly, the resulting film can be directly transferred onto any desired flexible substrates, and flexible transistors based on the Dif-TES-ADT thin films show a mobility as high as 16.1 cm V s , which represents the highest mobility value for the flexible transistors reported thus far. The method is general for the growth of various high-quality OSC thin films, thus opening up opportunities for high-performance organic flexible electronics.

摘要

有机半导体(OSC)薄膜的电学性质在很大程度上由其形态和结晶度决定。然而,由于溶液涂覆过程中复杂的流体动力学,溶液处理的共轭小分子OSC薄膜通常表现出丰富的晶界和不纯的晶粒取向。在此,展示了一种新颖的方法——水面拖拽涂层法,用于制备具有大大增强的电荷传输性能的高质量OSC薄膜。该方法利用水面改变溶液的蒸发动力学以增大晶粒尺寸,并采用独特的拖拽涂层工艺实现有机晶体的单向生长。以2,8-二氟-5,11-双(三乙基硅乙炔基)蒽并二噻吩(Dif-TES-ADT)为例,获得了具有毫米级单晶畴和纯晶体取向的薄膜,显示出载流子迁移率显著提高(4.7倍)。更重要的是,所得薄膜可直接转移到任何所需的柔性基板上,基于Dif-TES-ADT薄膜的柔性晶体管显示出高达16.1 cm V s的迁移率,这代表了迄今为止报道的柔性晶体管的最高迁移率值。该方法对于各种高质量OSC薄膜的生长具有通用性,从而为高性能有机柔性电子学开辟了机会。

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