纳米技术
印刷电子产品
材料科学
数码产品
喷射(流体)
电流体力学
柔性电子器件
碳纳米管
分辨率(逻辑)
3D打印
喷嘴
墨水池
电极
计算机科学
机械工程
电气工程
工程类
化学
物理化学
航空航天工程
人工智能
复合材料
作者
Jang‐Ung Park,Matthew T. Hardy,Seong Jun Kang,Kira Barton,Kurt Adair,Deep Kishore Mukhopadhyay,Chang Young Lee,Michael S. Strano,Andrew G. Alleyne,John G. Georgiadis,Placid M. Ferreira,John A. Rogers
出处
期刊:Nature Materials
[Springer Nature]
日期:2007-08-05
卷期号:6 (10): 782-789
被引量:1326
摘要
Efforts to adapt and extend graphic arts printing techniques for demanding device applications in electronics, biotechnology and microelectromechanical systems have grown rapidly in recent years. Here, we describe the use of electrohydrodynamically induced fluid flows through fine microcapillary nozzles for jet printing of patterns and functional devices with submicrometre resolution. Key aspects of the physics of this approach, which has some features in common with related but comparatively low-resolution techniques for graphic arts, are revealed through direct high-speed imaging of the droplet formation processes. Printing of complex patterns of inks, ranging from insulating and conducting polymers, to solution suspensions of silicon nanoparticles and rods, to single-walled carbon nanotubes, using integrated computer-controlled printer systems illustrates some of the capabilities. High-resolution printed metal interconnects, electrodes and probing pads for representative circuit patterns and functional transistors with critical dimensions as small as 1 μm demonstrate potential applications in printed electronics.
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