Transient charge-driven 3D conformal printing via pulsed-plasma impingement.

IF 9.4 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Yu Jiang, Dong Ye, Aokang Li, Bo Zhang, Wenhu Han, Xuechen Niu, Mingtao Zeng, Lianbo Guo, Guanjun Zhang, Zhouping Yin, YongAn Huang
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引用次数: 0

Abstract

Seamless integration of microstructures and circuits on three-dimensional (3D) complex surfaces is of significance and is catalyzing the emergence of many innovative 3D curvy electronic devices. However, patterning fine features on arbitrary 3D targets remains challenging. Here, we propose a facile charge-driven electrohydrodynamic 3D microprinting technique that allows micron- and even submicron-scale patterning of functional inks on a couple of 3D-shaped dielectrics via an atmospheric-pressure cold plasma jet. Relying on the transient charging of exposed sites arising from the weakly ionized gas jet, the specified charge is programmably deposited onto the surface as a virtual electrode with spatial and time spans of ~mm in diameter and ~μs in duration to generate a localized electric field accordantly. Therefore, inks with a wide range of viscosities can be directly drawn out from micro-orifices and deposited on both two-dimensional (2D) planar and 3D curved surfaces with a curvature radius down to ~1 mm and even on the inner wall of narrow cavities via localized electrostatic attraction, exhibiting a printing resolution of ~450 nm. In addition, several conformal electronic devices were successfully printed on 3D dielectric objects. Self-aligned 3D microprinting, with stacking layers up to 1400, is also achieved due to the electrified surfaces. This microplasma-induced printing technique exhibits great advantages such as ultrahigh resolution, excellent compatibility of inks and substrates, antigravity droplet dispersion, and omnidirectional printing on 3D freeform surfaces. It could provide a promising solution for intimately fabricating electronic devices on arbitrary 3D surfaces.

通过脉冲等离子体撞击实现瞬态电荷驱动的三维保形打印。
在复杂的三维(3D)表面上无缝集成微结构和电路具有重要意义,并促进了许多创新型三维曲面电子器件的出现。然而,在任意三维目标上绘制精细特征图案仍然具有挑战性。在这里,我们提出了一种便捷的电荷驱动电流体动力三维微打印技术,该技术可通过大气压冷等离子体射流在几种三维形状的电介质上绘制微米甚至亚微米级的功能油墨图案。依靠弱电离气体射流对暴露部位产生的瞬时充电,指定电荷作为虚拟电极以可编程的方式沉积到表面,其空间和时间跨度直径为 ~mm,持续时间为 ~μs,从而相应地产生局部电场。因此,具有多种粘度的油墨可直接从微孔中抽出,并通过局部静电吸引沉积在曲率半径小至 ~1 毫米的二维(2D)平面和三维曲面上,甚至是狭窄空腔的内壁上,打印分辨率可达 ~450 纳米。此外,还在三维电介质物体上成功打印了多个保形电子器件。由于表面通电,还实现了堆叠层高达 1400 层的自对齐三维微打印。这种微等离子体诱导打印技术具有超高分辨率、油墨和基底的良好兼容性、反重力液滴分散以及在三维自由形态表面上的全方位打印等巨大优势。它为在任意三维表面上紧密制造电子设备提供了一种前景广阔的解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
19.00
自引率
0.90%
发文量
3575
审稿时长
2.5 months
期刊介绍: The Proceedings of the National Academy of Sciences (PNAS), a peer-reviewed journal of the National Academy of Sciences (NAS), serves as an authoritative source for high-impact, original research across the biological, physical, and social sciences. With a global scope, the journal welcomes submissions from researchers worldwide, making it an inclusive platform for advancing scientific knowledge.
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