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用于微图案电极的3D打印荫罩

3D-printed shadow masks for micro-patterned electrodes.

作者信息

Cha Chanwook, Jo Eunhwa, Kim Yeongjun, Choi Andrew Jaeyong, Han Koohee

机构信息

Department of Chemical Engineering, Kyungpook National University Daegu Republic of Korea

School of Computing, Dept. of AI-SW, Gachon University 1342 Seongnam-daero, Sujeong-gu Seongnam 13306 Republic of Korea

出版信息

RSC Adv. 2024 Oct 29;14(47):34586-34593. doi: 10.1039/d4ra06298a.

Abstract

Microfabrication is critical to the advancement of lab-on-chip devices by enabling the creation of high-precision, complex electrode structures. Traditional photolithography, commonly used to fabricate micro-patterned electrodes, involves complex and multi-step processes that can be costly and time-consuming. In this research, we present a method using 3D-printed shadow masks for electrode fabrication, offering a simpler, cost-effective alternative to traditional methods. Specifically, by leveraging a fused deposition modeling 3D printer, we demonstrate that 3D-printed shadow masks streamline rapid prototyping of micro-patterned electrodes with a range of designs, from simple lines to complex patterns. To assess the lab-on-chip functionality of the electrodes fabricated from 3D-printed shadow masks, we investigate electric field-driven assembly of microparticles in the electrodes. The micro-patterned designs of the electrodes remotely guide the assembly patterns, resulting in the formation of well-defined, multiple chains and anisotropic structures. These results suggest that 3D-printed shadow masks not only simplify the fabrication process, but also maintain the precision required for advanced lab-on-chip applications. The proposed method could pave the way for more accessible and scalable manufacturing of the complex micro-patterned electrodes.

摘要

微纳加工对于片上实验室设备的发展至关重要,它能够制造出高精度、复杂的电极结构。传统光刻技术常用于制造微图案电极,涉及复杂且多步骤的过程,成本高且耗时。在本研究中,我们提出了一种使用3D打印荫罩制造电极的方法,为传统方法提供了一种更简单、经济高效的替代方案。具体而言,通过利用熔融沉积建模3D打印机,我们证明3D打印荫罩简化了具有一系列设计(从简单线条到复杂图案)的微图案电极的快速原型制作。为了评估由3D打印荫罩制造的电极的片上实验室功能,我们研究了电极中电场驱动的微粒组装。电极的微图案设计远程引导组装图案,导致形成明确的多条链和各向异性结构。这些结果表明,3D打印荫罩不仅简化了制造过程,而且还保持了先进片上实验室应用所需的精度。所提出的方法可为更易于实现和可扩展的复杂微图案电极制造铺平道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/84b1/11520313/59612f0495c7/d4ra06298a-f1.jpg

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