纸基上气溶胶喷射印刷导电互连的激光烧结研究

M. Alhendi, R. Sivasubramony, J. Lombardi, D. Weerawarne, P. Borgesen, M. Poliks, A. Alizadeh
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引用次数: 1

摘要

对可穿戴和一次性电子产品的需求不断增长,导致需要具有成本效益和紧凑的传感器设计和制造。大多数设备是多层的,需要一个载体衬底来容纳传感器。纸基板已经引起了人们的注意,因为它们有可能同时充当传感器和基板本身。基于纸张的印刷传感器已被演示并显示出功能。然而,在纸上制造设备是具有挑战性的,因为表面粗糙,出血,并且与实现高导电性所需的高温烧结工艺不相容。因此,互连的导电性通常相对较低,并施加性能限制。在这里,我们首次报道了高导电性银纳米颗粒互连印刷在纸衬底上并使用连续波激光烧结。确定了打印工艺,并优化了激光烧结参数,实现了导电率约67%的大块材料。作为应用实例,对交叉电极进行了印刷和激光烧结。在50°C /85% RH条件下老化,暴露于水和人工汗液中,监测泄漏电流。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Laser Sintering of Aerosol Jet Printed Conductive Interconnects on Paper Substrate
Growing demand for wearable and disposable electronics leads to a need for cost effective and compact sensor designs and fabrication. Most of the devices are multi-layered and require a carrier substrate to hold the sensors. Paper substrates have gained attention since they have the potential to act as both the sensor and the substrate itself. Paper-based printed sensors have been demonstrated and shown functional. However, device fabrication on paper is challenging because of the surface roughness, bleeding, and incompatibility with high temperature sintering processes needed to achieve high conductivity. The conductivity of the interconnects is therefore usually relatively low and imposes performance limitations. Here we report, for the first time, highly conductive silver nano-particle interconnects printed on a paper substrate and sintered with a continuous wave laser. The printing process was identified and the laser sintering parameters were optimized to achieve a conductivity of approximately 67% of the bulk material. As an example of application, interdigitated electrodes were printed and laser sintered. The leakage current was monitored while aging at 50°C /85% RH conditions and exposing to water and artificial sweat.
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