Dry Printing Pure Copper with High Conductivity and Adhesion for Flexible Electronics

烧结 纳米颗粒 墨水池 电导率 材料科学 印刷电子产品 聚酰亚胺 基质(水族馆) 柔性电子器件 电阻率和电导率 选择性激光烧结 导电体 导电油墨 纳米技术 化学工程 冶金 复合材料 化学 工程类 薄板电阻 电气工程 图层(电子) 物理化学 海洋学 地质学
作者
Zabihollah Ahmadi,Aarsh Patel,Curtis Hill,Steven R. Peeples,Jennifer M. Jones,Matthew G. Boebinger,Masoud Mahjouri‐Samani
出处
期刊:ACS applied electronic materials [American Chemical Society]
卷期号:6 (5): 3933-3940 被引量:4
标识
DOI:10.1021/acsaelm.4c00640
摘要

Additive manufacturing of functional devices on various rigid and flexible substrates is rising rapidly due to their design flexibility, rapid manufacturing, and lower cost. Current printing technologies are ink-based and focused on printing silver (Ag) as conductive lines due to its matured ink formulation process, low sintering temperature, ease of printing, and low oxidation rate. However, Ag is the 68th most abundant element on Earth, while copper (Cu) is the 25th, making it much cheaper (>100×) while having a comparable conductivity to Ag. Therefore, printing Cu has become technologically and economically more attractive than Ag. Nevertheless, Cu printing is still a significant challenge in ink-based printing methods due to the higher sintering temperature relative to the glass-transition temperature of most flexible substrates, the higher oxidation rate, the challenging ink formulation process, and ink stability concerns. Here, we demonstrate printing highly conductive Cu on flexible polyimide substrates using a dry printing technique. Cu nanoparticles (∼3–30 nm) are generated by on-demand laser ablation of a solid Cu target inside the printer head and under argon background gas. These Cu nanoparticles are then transported through a nozzle and onto the substrate, where they are laser-sintered in real time. The argon gas plays three critical roles in laser plume condensation for nanoparticle generation, transport, and sheath gas to avoid oxidation during sintering. The sintered nanoparticles thus show high electrical conductivity and mechanical stability under static and cyclic tests. Our dry printing technique can potentially revolutionize how electronic devices and sensors are additively manufactured for earth and space applications.
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