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柔性印刷金属电路的压力约束超声激活

Pressure-constrained sonication activation of flexible printed metal circuit.

作者信息

Cao Lingxiao, Wang Zhonghao, Hu Daiwei, Dong Haoxuan, Qu Chunchun, Zheng Yi, Yang Chao, Zhang Rui, Xing Chunxiao, Li Zhen, Xin Zhe, Chen Du, Song Zhenghe, He Zhizhu

机构信息

Center for Agricultural Flexible Electronics Technology, College of Engineering, China Agricultural University, Beijing, 100083, China.

出版信息

Nat Commun. 2024 Sep 27;15(1):8324. doi: 10.1038/s41467-024-52873-7.

Abstract

Metal micro/nanoparticle ink-based printed circuits have shown promise for promoting the scalable application of flexible electronics due to enabling superhigh metallic conductivity with cost-effective mass production. However, it is challenging to activate printed metal-particle patterns to approach the intrinsic conductivity without damaging the flexible substrate, especially for high melting-point metals. Here, we report a pressure-constrained sonication activation (PCSA) method of the printed flexible circuits for more than dozens of metal (covering melting points from room temperature to 3422 °C) and even nonmetallic inks, which is integrated with the large-scale roll-to-roll process. The PCSA-induced synergistic heat-softening and vibration-bonding effect of particles can enable multilayer circuit interconnection and join electronic components onto printed circuits without solder within 1 s at room temperature. We demonstrate PCSA-based applications of 3D flexible origami electronics, erasable and foldable double-sided electroluminescent displays, and custom-designed and large-area electronic textiles, thus indicating its potential for universality in flexible electronics.

摘要

基于金属微/纳米颗粒墨水的印刷电路因能以具有成本效益的大规模生产实现超高金属导电性,已显示出推动柔性电子器件规模化应用的潜力。然而,激活印刷的金属颗粒图案以接近本征导电性而不损坏柔性基板具有挑战性,尤其是对于高熔点金属。在此,我们报告了一种用于数十种金属(涵盖熔点从室温到3422°C)甚至非金属墨水的印刷柔性电路的压力约束超声激活(PCSA)方法,该方法与大规模卷对卷工艺集成。PCSA引发的颗粒协同热软化和振动结合效应能够在室温下1秒内实现多层电路互连,并将电子元件无需焊接地连接到印刷电路上。我们展示了基于PCSA的3D柔性折纸电子器件、可擦除和可折叠双面电致发光显示器以及定制设计的大面积电子纺织品的应用,从而表明其在柔性电子器件中的通用性潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8d62/11436825/fed8a6200302/41467_2024_52873_Fig1_HTML.jpg

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