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采用分离的碳纳米管的用于刚性和柔性薄膜晶体管的可伸缩且低成本的丝网印刷方法。

Screen printing as a scalable and low-cost approach for rigid and flexible thin-film transistors using separated carbon nanotubes.

机构信息

Department of Materials Science, University of Southern California , Los Angeles, California 90089, United States.

出版信息

ACS Nano. 2014 Dec 23;8(12):12769-76. doi: 10.1021/nn505979j. Epub 2014 Dec 11.

Abstract

Semiconducting single-wall carbon nanotubes are very promising materials in printed electronics due to their excellent mechanical and electrical property, outstanding printability, and great potential for flexible electronics. Nonetheless, developing scalable and low-cost approaches for manufacturing fully printed high-performance single-wall carbon nanotube thin-film transistors remains a major challenge. Here we report that screen printing, which is a simple, scalable, and cost-effective technique, can be used to produce both rigid and flexible thin-film transistors using separated single-wall carbon nanotubes. Our fully printed top-gated nanotube thin-film transistors on rigid and flexible substrates exhibit decent performance, with mobility up to 7.67 cm2 V(-1) s(-1), on/off ratio of 10(4)∼10(5), minimal hysteresis, and low operation voltage (<10 V). In addition, outstanding mechanical flexibility of printed nanotube thin-film transistors (bent with radius of curvature down to 3 mm) and driving capability for organic light-emitting diode have been demonstrated. Given the high performance of the fully screen-printed single-wall carbon nanotube thin-film transistors, we believe screen printing stands as a low-cost, scalable, and reliable approach to manufacture high-performance nanotube thin-film transistors for application in display electronics. Moreover, this technique may be used to fabricate thin-film transistors based on other materials for large-area flexible macroelectronics, and low-cost display electronics.

摘要

半导体单壁碳纳米管具有优异的机械和电学性能、出色的打印性能以及在柔性电子领域的巨大潜力,因此在印刷电子领域非常有应用前景。然而,开发可扩展且低成本的制造方法,以生产全印刷高性能单壁碳纳米管薄膜晶体管仍然是一个主要挑战。在这里,我们报告称,丝网印刷(一种简单、可扩展且具有成本效益的技术)可用于使用分离的单壁碳纳米管生产刚性和柔性薄膜晶体管。我们在刚性和柔性衬底上完全印刷的顶栅式纳米管薄膜晶体管具有出色的性能,迁移率高达 7.67 cm2 V-1 s-1,开关比为 104∼105,最小的滞后和低工作电压(<10 V)。此外,还展示了印刷纳米管薄膜晶体管的出色机械柔韧性(弯曲半径低至 3 毫米)和对有机发光二极管的驱动能力。鉴于全丝网印刷单壁碳纳米管薄膜晶体管的高性能,我们相信丝网印刷是一种低成本、可扩展且可靠的方法,可以制造用于显示电子应用的高性能纳米管薄膜晶体管。此外,该技术可用于制造基于其他材料的薄膜晶体管,用于大面积柔性宏观电子学和低成本显示电子学。

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