利用纳米压痕技术评估导电银墨的结构

Q4 Multidisciplinary
Z. Bachok, Abdullah Aziz Saad, Sana Zulfiqar, Aizat Abas, M. Shafiq, Muhammad Fadhirul Izwan Abdul Malik
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引用次数: 0

摘要

可拉伸导电油墨已成为开发柔性可穿戴电子设备的一项关键技术。银纳米粒子通常被掺入这些油墨中,以在保持可拉伸性的同时赋予导电性。然而,油墨配方中银的含量会极大地影响印刷导电油墨的结构完整性和机械性能。本研究调查了不同银含量对可拉伸导电油墨结构评估的影响。通过将 PDMS-OH 粘合剂、有机溶剂、交联剂、催化剂、粘度控制剂、添加剂和纳米银颗粒结合在一起,制备了三种不同银浓度(40%、60% 和 80%)的导电油墨样品。采用纳米压痕法和场发射扫描电子显微镜(FESEM)对不同银浓度的油墨样品进行了表征。使用数字万用表测量了银导电墨水的导电性。在三种样品中,导电油墨配方的最佳银浓度为 60%,其硬度为 2.04 兆帕,弹性模量为 32.9 兆帕,以平衡机械弹性和 1.389x104 S/m 的导电率。银含量的增加会降低油墨的柔韧性,使其更脆、伸展性更差,但同时也会提高其导电性。这些发现为优化可拉伸导电油墨中的银含量提供了有价值的见解,从而在柔性和可拉伸电子产品中实现稳健的结构完整性和可靠的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Structural Assessment of Silver Conductive Ink using Nanoindentation
Stretchable conductive inks have emerged as a key enabling technology for the development of flexible and wearable electronic devices. Silver nanoparticles are commonly incorporated into these inks to impart electrical conductivity while maintaining stretchability. However, the amount of silver in the ink formulation can significantly influence the structural integrity and mechanical performance of printed conductive inks. This study investigates the impact of different silver contents on the structural assessment of stretchable conductive ink. Three samples of conductive inks, each with a different silver concentration (40%, 60%, and 80%) were produced by combining a PDMS-OH binder, organic solvent, cross-linking agent, catalyst, viscosity controller, additives, and silver nanoparticles. The ink samples with varying silver concentrations are characterized using nanoindentation and field-emission scanning electron microscopy (FESEM). The electrical conductivity of the silver conductive ink was measured with a digital multimeter. Among the three samples, the optimal silver concentration for conductive ink formulation is 60%, which exhibits a hardness of 2.04 MPa and an elastic modulus of 32.9 MPa to balance mechanical elasticity with an electrical conductivity of 1.389x104 S/m. Increasing silver content reduces the ink's flexibility, making it more brittle and less stretchable, but it also boosts its conductivity. The findings provide valuable insights into optimizing the silver content in stretchable conductive inks for achieving robust structural integrity and reliable performance in flexible and stretchable electronics.
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来源期刊
Journal of Current Science and Technology
Journal of Current Science and Technology Multidisciplinary-Multidisciplinary
CiteScore
0.80
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