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通过毛细管笔印刷对可溶解并五苯进行微观结构控制,用于有机电子学。

Microstructural control over soluble pentacene deposited by capillary pen printing for organic electronics.

机构信息

Department of Organic and Nano System Engineering, Konkuk University, Seoul 143-701, Korea.

出版信息

ACS Appl Mater Interfaces. 2013 Aug 28;5(16):7838-44. doi: 10.1021/am401698c. Epub 2013 Aug 15.

DOI:10.1021/am401698c
PMID:23895344
Abstract

Research into printing techniques has received special attention for the commercialization of cost-efficient organic electronics. Here, we have developed a capillary pen printing technique to realize a large-area pattern array of organic transistors and systematically investigated self-organization behavior of printed soluble organic semiconductor ink. The capillary pen-printed deposits of organic semiconductor, 6,13-bis(triisopropylsilylethynyl) pentacene (TIPS_PEN), was well-optimized in terms of morphological and microstructural properties by using ink with mixed solvents of chlorobenzene (CB) and 1,2-dichlorobenzene (DCB). Especially, a 1:1 solvent ratio results in the best transistor performances. This result is attributed to the unique evaporation characteristics of the TIPS_PEN deposits where fast evaporation of CB induces a morphological evolution at the initial printed position, and the remaining DCB with slow evaporation rate offers a favorable crystal evolution at the pinned position. Finally, a large-area transistor array was facilely fabricated by drawing organic electrodes and active layers with a versatile capillary pen. Our approach provides an efficient printing technique for fabricating large-area arrays of organic electronics and further suggests a methodology to enhance their performances by microstructural control of the printed organic semiconducting deposits.

摘要

研究印刷技术受到特别关注,因为它可以使成本效益高的有机电子产品商业化。在这里,我们开发了一种毛细管笔印刷技术,以实现大面积的有机晶体管图案阵列,并系统地研究了印刷可溶性有机半导体墨水的自组织行为。通过使用氯苯 (CB) 和 1,2-二氯苯 (DCB) 的混合溶剂,对有机半导体 6,13-双(三异丙基硅基乙炔基)并五苯 (TIPS_PEN) 的毛细管笔印刷沉积物进行了很好的形态和微观结构优化。特别是,溶剂比为 1:1 时可获得最佳的晶体管性能。这一结果归因于 TIPS_PEN 沉积物的独特蒸发特性,其中 CB 的快速蒸发在初始印刷位置引起形态演变,而剩余的 DCB 蒸发速度较慢,在固定位置提供了有利的晶体演变。最后,通过使用通用的毛细管笔绘制有机电极和活性层,可轻松制造大面积晶体管阵列。我们的方法为制造大面积有机电子器件阵列提供了一种有效的印刷技术,并进一步通过对印刷有机半导体沉积物的微观结构控制来提高其性能的方法。

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