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直接写入聚合物场效应晶体管,工作频率 20MHz。

Direct-written polymer field-effect transistors operating at 20 MHz.

机构信息

Center for Nano Science and Technology@PoliMi, Istituto Italiano di Tecnologia, via Giovanni Pascoli 70/3, Milano, Italy.

Dipartimento di Fisica, Politecnico di Milano, Piazza Leonardo da Vinci 32, Milano, Italy.

出版信息

Sci Rep. 2016 Dec 12;6:38941. doi: 10.1038/srep38941.

Abstract

Printed polymer electronics has held for long the promise of revolutionizing technology by delivering distributed, flexible, lightweight and cost-effective applications for wearables, healthcare, diagnostic, automation and portable devices. While impressive progresses have been registered in terms of organic semiconductors mobility, field-effect transistors (FETs), the basic building block of any circuit, are still showing limited speed of operation, thus limiting their real applicability. So far, attempts with organic FETs to achieve the tens of MHz regime, a threshold for many applications comprising the driving of high resolution displays, have relied on the adoption of sophisticated lithographic techniques and/or complex architectures, undermining the whole concept. In this work we demonstrate polymer FETs which can operate up to 20 MHz and are fabricated by means only of scalable printing techniques and direct-writing methods with a completely mask-less procedure. This is achieved by combining a fs-laser process for the sintering of high resolution metal electrodes, thus easily achieving micron-scale channels with reduced parasitism down to 0.19 pF mm, and a large area coating technique of a high mobility polymer semiconductor, according to a simple and scalable process flow.

摘要

印刷聚合物电子学长期以来一直承诺通过为可穿戴设备、医疗保健、诊断、自动化和便携式设备提供分布式、灵活、轻量级和具有成本效益的应用来彻底改变技术。尽管在有机半导体迁移率方面取得了令人印象深刻的进展,但场效应晶体管 (FET) 作为任何电路的基本构建块,其运行速度仍然有限,从而限制了它们的实际适用性。到目前为止,采用有机 FET 实现数十兆赫兹(MHz)的操作速度(这是包括驱动高分辨率显示器在内的许多应用的门槛),都依赖于采用复杂的光刻技术和/或复杂的架构,从而破坏了整个概念。在这项工作中,我们展示了可以工作高达 20MHz 的聚合物 FET,这些 FET 仅通过可扩展的印刷技术和无掩模的直接书写方法制造。这是通过结合飞秒激光工艺来烧结高分辨率金属电极来实现的,从而可以轻松地实现具有低寄生性(低至 0.19pFmm)的微米级通道,以及根据简单且可扩展的工艺流程进行大面积高迁移率聚合物半导体的涂覆技术。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0eaa/5150525/b286814c73b8/srep38941-f1.jpg

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