4.8 Article

Simple, Fast, and Scalable Reverse-Offset Printing of Micropatterned Copper Nanowire Electrodes with Sub-10 μm Resolution

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 14, Issue 4, Pages 5807-5814

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.1c21223

Keywords

copper nanowires; micropatterning; reverse-offset printing; transparent conducting electrodes; flexible electronics

Funding

  1. National Research Foundation (NRF) of Korea - Ministry of Science and ICT [NRF-2018R1A5A1025594, NRF-2021M3H4A3A01050375]
  2. BK21 FOUR program through the NRF - Ministry of Education of Korea

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This study reports a novel reverse-offset printing technology for high-resolution micro-patterning of copper nanowires. By adjusting the ink formulation, high-quality copper nanowire micro-shapes were achieved, demonstrating the potential for excellent performance in flexible transparent electronic devices.
Copper nanowires (CuNWs) possess key characteristics for realizing flexible transparent electronics. High-quality CuNW micropatterns with high resolution and uniform thickness are required to realize integrated transparent electronic devices. However, patterning high- aspect-ratio CuNWs is challenging because of their long length, exceeding the target pattern dimension. This work reports a novel reverse-offset printing technology that enables the sub-10 mu m high-resolution micro-patterning of CuNW transparent conducting electrodes (TCEs). The CuNW ink for reverse-offset printing was formulated to control viscoelasticity, cohesive force, and adhesion by adjusting the ligands, solvents, surface energy modifiers, and leveling additives. An inexpensive commercial adhesive handroller achieved a simple, fast, and scalable micropatterning of CuNW TCEs. Easy production of high-quality CuNW micropatterns with various curvatures and shapes was possible, regardless of the printing direction. The reverse-offset-printed CuNW micropatterns exhibited a minimum of 7 mu m line width and excellent pattern qualities such as fine line spacing, sharp edge definition, and outstanding pattern uniformity. In addition, they exhibited excellent sheet resistance, high optical transparency, outstanding mechanical durability, and long-term stability. Flexible light-emitting diode (LED) circuits, transparent heaters, and organic LEDs (OLEDs) can be fabricated using high-resolution reverse-offset-printed CuNW micropatterns for applications in flexible transparent electronic devices.

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