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利用激光图案化银纳米线电极制备可拉伸有机晶体管的简便方法。

Facile Approach to Fabricating Stretchable Organic Transistors with Laser-Patterned Ag Nanowire Electrodes.

作者信息

Song Runqiao, Yao Shanshan, Liu Yuxuan, Wang Hongyu, Dong Jingyan, Zhu Yong, O'Connor Brendan T

机构信息

Department of Mechanical and Aerospace Engineering, and Organic and Carbon Electronics Laboratories (ORaCEL), North Carolina State University, Raleigh, North Carolina 27695, United States.

Department of Mechanical Engineering, Stony Brook University, Stony Brook, New York 11794, United States.

出版信息

ACS Appl Mater Interfaces. 2020 Nov 11;12(45):50675-50683. doi: 10.1021/acsami.0c15339. Epub 2020 Nov 2.

Abstract

Stretchable electronics are poised to revolutionize personal healthcare and robotics, where they enable distributed and conformal sensors. Transistors are fundamental building blocks of electronics, and there is a need to produce stretchable transistors using low-cost and scalable fabrication techniques. Here, we introduce a facile fabrication approach using laser patterning and transfer printing to achieve high-performance, solution-processed intrinsically stretchable organic thin-film transistors (OTFTs). The device consists of Ag nanowire (NW) electrodes, where the source and drain electrodes are patterned using laser ablation. The Ag NWs are then partially embedded in a poly(dimethylsiloxane) (PDMS) matrix. The electrodes are combined with a PDMS dielectric and polymer semiconductor, where the layers are individually transfer printed to complete the OTFT. Two polymer semiconductors, DPP-DTT and DPP-4T, are considered and show stable operation under the cyclic strain of 20 and 40%, respectively. The OTFTs maintain electrical performance by adopting a buckled structure after the first stretch-release cycle. The conformability and stretchability of the OTFT is also demonstrated by operating the transistor while adhered to a finger being flexed. The ability to pattern highly conductive Ag NW networks using laser ablation to pattern electrodes as well as interconnects provides a simple strategy to produce complex stretchable OTFT-based circuits.

摘要

可拉伸电子器件有望彻底改变个人医疗保健和机器人技术领域,因为它们能够实现分布式和贴合式传感器。晶体管是电子产品的基本构建块,需要使用低成本且可扩展的制造技术来生产可拉伸晶体管。在此,我们介绍一种简便的制造方法,利用激光图案化和转移印刷来实现高性能、溶液处理的本征可拉伸有机薄膜晶体管(OTFT)。该器件由银纳米线(NW)电极组成,其中源极和漏极电极通过激光烧蚀进行图案化。然后将银纳米线部分嵌入聚二甲基硅氧烷(PDMS)基质中。电极与PDMS电介质和聚合物半导体相结合,各层通过转移印刷单独完成OTFT的制作。研究了两种聚合物半导体DPP-DTT和DPP-4T,它们分别在20%和40%的循环应变下表现出稳定的工作性能。在首次拉伸-释放循环后,OTFT通过采用屈曲结构来维持电性能。当晶体管附着在弯曲的手指上工作时,也证明了OTFT的贴合性和可拉伸性。利用激光烧蚀对电极以及互连进行图案化以形成高导电银纳米线网络的能力,为生产基于OTFT的复杂可拉伸电路提供了一种简单策略。

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