3D Shape Control of Printed Micro-Electrodes with Substrate Reshaping

IF 6.4 3区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
E. Martí-Jerez, J. Marcos Fernández-Pradas, P. Serra, M. Duocastella
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Abstract

Additive manufacturing (AM) techniques based on liquid precursors, including inkjet printing or laser-induced forward transfer (LIFT), are emerging as the tool-of-choice for the on-demand fabrication of printed electronic devices on flat and flexible substrates. However, the aspect ratio of the printable structures, which is key for determining electrical properties, is typically determined by the wettability between printed ink and substrate. Higher aspect-ratio structures can only be achieved by multi-pass printing, with the consequent loss of fabrication throughput and increase in complexity. Here, these issues are addressed by using print-n-release, a method based on printing micro-electrodes on pre-stretched elastomeric substrates. Upon stress release, the liquid-printed electrodes shrink while increasing their aspect-ratio. As a result, their final shape can be tailored beyond the limitations imposed by wetting constraints, enabling intentional miniaturization by design. The principle and practical implementation of print-n-release are described, and show how electrodes with up to an 8 fold increase in aspect-ratio and a 4 fold reduction in sheet resistance can be produced in a single-pass compared to traditional printing methods. As a proof-of-concept, functional interdigitated electrodes that serve as sensors for drop volume and electrolyte concentration, delivering enhanced sensitivity and a reduced footprint not achievable with standard printing techniques are fabricated.

Abstract Image

基于衬底重塑的印刷微电极三维形状控制
基于液体前体的增材制造(AM)技术,包括喷墨打印或激光诱导正向转移(LIFT),正在成为在平面和柔性基材上按需制造印刷电子器件的首选工具。然而,可印刷结构的纵横比是决定电性能的关键,通常是由印刷油墨和承印物之间的润湿性决定的。高纵横比结构只能通过多道印刷来实现,随之而来的是制造吞吐量的损失和复杂性的增加。在这里,这些问题通过使用print-n-release来解决,这是一种在预拉伸弹性体基板上打印微电极的方法。当应力释放时,液体打印电极在增加其宽高比的同时收缩。因此,它们的最终形状可以定制,而不受润湿约束的限制,通过设计实现有意的小型化。描述了打印-n-释放的原理和实际实施,并展示了与传统印刷方法相比,如何在单次通过中产生高达8倍长宽比增加和4倍片材电阻减少的电极。作为概念验证,功能性交叉电极可以作为液滴体积和电解质浓度的传感器,提供更高的灵敏度和更小的占地面积,这是标准印刷技术无法实现的。
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来源期刊
Advanced Materials Technologies
Advanced Materials Technologies Materials Science-General Materials Science
CiteScore
10.20
自引率
4.40%
发文量
566
期刊介绍: Advanced Materials Technologies Advanced Materials Technologies is the new home for all technology-related materials applications research, with particular focus on advanced device design, fabrication and integration, as well as new technologies based on novel materials. It bridges the gap between fundamental laboratory research and industry.
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