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双模式衣康酸银导电墨水:通过可调分解途径连接超精密电子器件和柔性传感器

Dual-Mode Silver Itaconate Conductive Ink: Bridging Ultra-Precise Electronics and Flexible Sensors via Tunable Decomposition Pathways.

作者信息

Yang Wendong, Zhang Xiaoyuan, Shao Yuhang, Wang Yu, Mo Lixin, List-Kratochvil Emil J W

机构信息

School of Electronic and Information Engineering, Liaoning Technical University, Huludao 125105, China.

Department of Physics, Center for the Science of Materials Berlin, Humboldt University of Berlin, Berlin 12489, Germany.

出版信息

Langmuir. 2025 Jul 1;41(25):16477-16489. doi: 10.1021/acs.langmuir.5c01827. Epub 2025 Jun 14.

Abstract

The demand for ultraprecision and multifunctional electronic devices has driven advancements in printed electronics, particularly in conductive inks that enable high-resolution patterning and compatibility with flexible substrates at low processing temperatures. While silver nanoparticle (AgNP)-based inks have been widely adopted, nonparticulate alternatives like silver itaconate (AgIt) remain underexplored. AgIt, a compound derived from itaconic acid, presents a promising precursor due to its molecular structure, which enhances thermal stability and enables precise control over decomposition behavior, morphology, and particle size of the resulting silver. Despite these advantages, AgIt-based inks have not been systematically investigated for electronic applications. Here, we developed a dual-mode, particle-free conductive ink using AgIt as a precursor. Initially, the AgIt-diamine (AgIt-DAP) ink required high-temperature sintering to achieve optimal conductivity, although it shows excellent stability. By introducing formic acid, we created a silver-amine-acid complex ink (AgIt-DAP-FA) that achieved a dramatic improvement in electrical performance at low temperatures, significantly expanding its versatility. Our work highlights three key innovations: (1) the acid-induced tunability of the AgIt-DAP ink, which enhanced conductivity by 10 times under mild conditions; (2) the comprehensive elucidation of the decomposition mechanisms and performance modulation before and after acid modification, providing critical insights into the silver film formation process; and (3) the demonstration of the ink's adaptability to both rigid and flexible substrates through Ultra-Precise Deposition (UPD) and inkjet printing techniques. The AgIt-DAP ink was successfully employed to fabricate ultraprecise LED circuits on glass substrates, while the AgIt-DAP-FA ink enabled the development of high-sensitivity flexible sensors on polymers. This work bridges material innovation with practical application, offering a universal strategy for designing tunable, particle-free conductive inks. By addressing limitations in substrate compatibility and performance adaptability, our AgIt-based ink system advances the development of next-generation printed electronics for LEDs, wearable sensors, and multifunctional devices.

摘要

对超精密和多功能电子设备的需求推动了印刷电子学的发展,特别是在导电油墨方面,这种油墨能够实现高分辨率图案化,并在低温处理下与柔性基板兼容。虽然基于银纳米颗粒(AgNP)的油墨已被广泛采用,但诸如衣康酸银(AgIt)等非颗粒替代物仍未得到充分探索。AgIt是一种由衣康酸衍生而来的化合物,由于其分子结构,它是一种很有前景的前驱体,这种结构增强了热稳定性,并能精确控制所得银的分解行为、形态和粒径。尽管有这些优点,但基于AgIt的油墨尚未针对电子应用进行系统研究。在此,我们开发了一种以AgIt为前驱体的双模式、无颗粒导电油墨。最初,AgIt-二胺(AgIt-DAP)油墨虽然具有出色的稳定性,但需要高温烧结才能实现最佳导电性。通过引入甲酸,我们制备了一种银-胺-酸复合油墨(AgIt-DAP-FA),其在低温下的电性能有了显著改善,大大扩展了其通用性。我们的工作突出了三个关键创新点:(1)AgIt-DAP油墨的酸诱导可调性,在温和条件下电导率提高了10倍;(2)全面阐明了酸改性前后的分解机制和性能调节,为银膜形成过程提供了关键见解;(3)通过超精密沉积(UPD)和喷墨打印技术证明了该油墨对刚性和柔性基板的适应性。AgIt-DAP油墨成功用于在玻璃基板上制造超精密LED电路,而AgIt-DAP-FA油墨则能够在聚合物上开发高灵敏度柔性传感器。这项工作将材料创新与实际应用联系起来,为设计可调谐、无颗粒导电油墨提供了一种通用策略。通过解决基板兼容性和性能适应性方面的限制,我们基于AgIt的油墨系统推动了用于LED、可穿戴传感器和多功能设备的下一代印刷电子学的发展。

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