调整通过直接墨水书写制造的高性能应变片的银基油墨的印刷性和附着力。

IF 3.7 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
ACS Omega Pub Date : 2025-01-03 eCollection Date: 2025-01-14 DOI:10.1021/acsomega.4c09042
Md Alamgir Hossain, Gabriela Plautz-Ratkovski, Joshua DeGraff, Tarik J Dickens, Zhiyong Liang, Curtis Hill, Jennifer Jones, Subramanian Ramakrishnan
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引用次数: 0

摘要

结构健康监测(SHM)系统对于确保空间探索的安全至关重要,因为航天器和结构可能会受到有害的应力和应变。通过部署常规应变计,SHM系统可以快速检测和评估结构中的局部应变行为;然而,这些应变片受到低灵敏度的限制(测量因子,GF ~ 2)。本研究介绍了一种打印高灵敏度应变片的方法,同时还考虑了拉伸性和长期耐用性。通过直接墨水书写(DIW),这些装置可以通过挤压各种粘弹性墨水来生产。油墨的粘弹性可以在添加剂的帮助下进行调整,以帮助实现所需的应用。在这项工作中,通过添加乙基纤维素(EC)和聚烯烃(PO)(添加剂)的组合,以市售的CB028(丝网印刷用银油墨)为原料制备了一系列油墨。为了优化打印应变片的长期传感响应,对其流变特性(频率扫描分析、屈服应力、粘弹性恢复、粘度测量和粘性测试)进行了系统研究。采用粘弹性窗口法预测了配方油墨的最佳性能。通过这种方法,可以确定90%的CB028、5%的EC和5%的PO与商用CB028相比,具有更强的弹性、附着力和剥离强度。配方油墨具有增强的粘性(129 mN/mm2)和剥离强度(23.3 kJ/mm2),这使得粘弹性窗口非常适合直接用墨水书写应变片。打印结构在三点弯曲配置下进行测试,以记录与配方流变特性和底层微观结构相关的压阻响应。结果表明,测量因子高达106,在300多个应变循环下具有稳定的传感响应。扫描电镜分析也显示最小的裂纹形成,导致稳定的响应。该研究证明了开发用于潜在印刷应变计应用的高性能油墨的可行性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Tuning Printability and Adhesion of a Silver-Based Ink for High-Performance Strain Gauges Manufactured via Direct Ink Writing.

Structural health monitoring (SHM) systems are critical in ensuring the safety of space exploration, as spacecraft and structures can experience detrimental stresses and strains. By deploying conventional strain gauges, SHM systems can promptly detect and assess localized strain behaviors in structures; however, these strain gauges are limited by low sensitivity (gauge factor, GF ∼ 2). This study introduces an approach to printing strain gauges with high sensitivity, while also considering stretchability and long-term durability. Through direct ink writing (DIW), these devices can be produced by the extrusion of a wide range of viscoelastic inks. The viscoelastic properties of the ink can be tuned with the help of additives to aid in the processing for a desired application. In this work, a series of inks were prepared from commercially available CB028 (silver ink used in screen printing) by adding a combination of ethyl cellulose (EC) and polyolefin (PO) (additives). With the goal of optimizing the long-term sensing response of the printed strain gauges, a systematic study of the rheological properties (frequency sweep analyses, yield stress, viscoelastic recovery, viscosity measurements, and tack tests) was conducted. A viscoelastic window approach was used to predict the optimal properties of the formulated inks. Using this approach, it was determined that 90% CB028, 5% EC, and 5% PO provided enhanced elastic properties, adhesion, and peel strength compared to commercial CB028. The formulated ink has enhanced tack (129 mN/mm2) and peel strength (23.3 kJ/mm2), which led to a viscoelastic window ideal for direct ink writing of the strain gauges. Printed structures were tested in a three-point bending configuration to record the piezoresistive responses that were correlated to the formulated rheological properties and underlying microstructure. The results revealed gauge factors as high as 106 with stable sensing responses for more than 300 cycles of strain. Scanning electron microscopy analysis also revealed minimal crack formation, which resulted in a stable response. The research demonstrated the feasibility of developing high-performance inks for potential printed strain gauge applications.

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来源期刊
ACS Omega
ACS Omega Chemical Engineering-General Chemical Engineering
CiteScore
6.60
自引率
4.90%
发文量
3945
审稿时长
2.4 months
期刊介绍: ACS Omega is an open-access global publication for scientific articles that describe new findings in chemistry and interfacing areas of science, without any perceived evaluation of immediate impact.
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