用于可持续电子学的喷墨印刷有机晶体管

G. Orecchini, R. Zhang, J. Agar, D. Staiculescu, M. Tentzeris, L. Roselli, C. Wong
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引用次数: 10

摘要

嵌入式纸质电子产品是未来电子产品的一个很有前途的解决方案,因此本文的目标是展示实现喷墨解决方案的途径,以实现人类最便宜的合成材料:纸上的复杂电路。一种直接写入技术,喷墨印刷将设计的图案直接转移到承印物上。喷墨技术作为一种比传统光刻技术更精确、更经济的制造方法而获得了广泛的应用。这项工作的挑战在于确定合适的材料,并展示有机场效应晶体管(OTFT)的所有构建块的可印刷性。对于半导体,提出了一种高可溶性的并戊烯前体13,6- n -亚砜酰乙酰胺对戊烯。苯甲醚,一种高沸点的溶剂选择,以确保适当的喷射溶液。溶液喷射良好,它必须在制备后立即使用,因为它的印刷性随着时间的推移而降低。对于栅极介质,提出了两种解决方案:(i)使用纸张本身作为绝缘体,在双面光面纸的两侧打印底部栅极器件;(ii)在顶部栅极配置中添加6,13-pentacenequinone (PQ)的并五苯杂质,通过减少半导体-介电界面上的散射位,可以提高器件的迁移率。对于电极,基于纳米颗粒的可打印银墨水必须被修改以匹配并五苯的功函数,或者用碳纳米管(CNTs)等替代可打印材料代替。直接印刷在纸上的并五苯薄膜的初步电学测试表明,在25 μ m通道长度下,该薄膜具有良好的导电性能。提出了进一步改进并五苯薄膜性能的方法。这项工作为第一个完全印刷在纸上的OTFT奠定了基础。
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Inkjet printed organic transistors for sustainable electronics
Embedded paper electronics is a promising solution for the future of electronics, and thus the goal for this paper is to show the pathway toward achieving inkjet solutions for the realization of complex circuitry on the cheapest synthetic material made by humankind: PAPER. A direct write technology, inkjet printing transfers the designed pattern directly to the substrate. Inkjet technologies have gained a lot of ground as a more accurate and economic fabrication method than traditional lithography. The challenge of this work is to identify the right materials and to show the printability of all the building blocks of an organic field-effect transistor (OTFT). For the semiconductor, a highly soluble pentacene precursor, 13,6-N-Sulfinylacetamidopentacene, is proposed. Anisole, a high boiling point solvent is chosen to insure proper jetting of the solution. The solution jets well and it has to be used right after preparation as its printability degrades with time. For the gate dielectric, two solutions are proposed: (i) using the paper itself as an insulator and print a bottom gate device on both sides of a double sided glossy paper, (ii) a pentacene impurity, of 6,13-pentacenequinone (PQ), in a top gate configuration, which may improve the device mobility by reducing the scattering sites at the semiconductor-dielectric interface. For the electrodes, a printable nano-particle based silver ink has to be modified to match the work function with pentacene, or replaced with an alternate printable material like Carbon Nanotubes (CNTs). Preliminary electrical testing of the pentacene film printed directly on paper shows good conduction properties for a 25 µm channel length. Further improvement of the pentacene film performance is proposed. This work establishes the foundation for the first fully printed OTFT on paper.
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