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通过灰度数字光处理3D打印快速高效地制造功能性电子器件

Fast and Efficient Fabrication of Functional Electronic Devices through Grayscale Digital Light Processing 3D Printing.

作者信息

Gholami Farzad, Yue Liang, Li Mingzhe, Jain Ayush, Mahmood Akhlak, Fratarcangeli Marcus, Ramprasad Rampi, Qi H Jerry

机构信息

The George W. Woodruff School of Mechanical Engineering, Georgia Institute of Technology, Atlanta, GA, 30332, USA.

School of Materials Science and Engineering, Georgia Institute of Technology, Atlanta, GA, 30332, USA.

出版信息

Adv Mater. 2024 Nov;36(46):e2408774. doi: 10.1002/adma.202408774. Epub 2024 Sep 28.

DOI:10.1002/adma.202408774
PMID:39340273
Abstract

Fabricating polymeric composites with desirable characteristics for electronic applications is a complex and costly process. Digital light processing (DLP) 3D printing emerges as a promising technique for manufacturing intricate structures. In this study, polymeric samples are fabricated with a conductivity difference exceeding three orders of magnitude in various portions of a part by employing grayscale DLP (g-DLP) single-vat single-cure 3D printing deliberate resin design. This is realized through the manipulation of light intensity during the curing process. Specifically, the rational resin design with added lithium ions results in the polymer cured under the maximum UV-light intensity exhibiting higher electrical resistance. Conversely, sections that are only partially cured retains uncured monomers, serving as a medium that facilitates ion mobility, consequently leading to higher conductivity. The versatility of g-DLP allows precise control of light intensity in different regions during the printing process. This characteristic opens up possibilities for applications, notably the low-cost, facile, and rapid production of complex electrical circuits and sensors. The utilization of this technique makes it feasible to fabricate materials with tailored conductivity and functionality, providing an innovative pathway to advance the accelerated and facile creation of sophisticated electronic devices.

摘要

制造具有适用于电子应用所需特性的聚合物复合材料是一个复杂且成本高昂的过程。数字光处理(DLP)3D打印作为一种制造复杂结构的有前途的技术应运而生。在本研究中,通过采用灰度DLP(g-DLP)单槽单固化3D打印的精心树脂设计,在部件的不同部分制造出电导率差异超过三个数量级的聚合物样品。这是通过在固化过程中控制光强度来实现的。具体而言,添加锂离子的合理树脂设计导致在最大紫外光强度下固化的聚合物具有更高的电阻。相反,仅部分固化的部分保留未固化的单体,作为促进离子迁移的介质,从而导致更高的电导率。g-DLP的多功能性允许在打印过程中精确控制不同区域的光强度。这一特性为应用开辟了可能性,特别是低成本、简便且快速地生产复杂电路和传感器。利用该技术可以制造具有定制电导率和功能的材料,为加速和简便地制造复杂电子设备提供了一条创新途径。

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