论文标题

接近气溶胶喷气打印银的实际电导率极限

Approaching the Practical Conductivity Limits of Aerosol Jet Printed Silver

论文作者

Rosker, Eva S., Barako, Michael T., Nguyen, Evan, DiMarzio, Don, Kisslinger, Kim, Duan, Dah-Weih, Sandhu, Rajinder, Goorsky, Mark S., Tice, Jesse

论文摘要

以前直接编写导电金属的努力已狭窄地集中在需要攻击性烧结(> 200°C)的纳米颗粒墨水悬浮液上,并导致低密度,小颗粒的聚集体,电导率<25%的散装金属。在这里,我们证明了反应性墨水溶液的气溶胶喷射打印,并表征具有接近柱电导率的高密度(93%)印刷的银痕迹,并且晶粒尺寸大于电子平均自由路径,而仅需要低温(80°C)处理。我们已经开发了一个预测性电子传输模型,该模型将微结构与测量的电导率相关联,并确定了接近印刷金属实用电导率极限的策略。我们对晶界和曲折如何有助于电阻率的分析提供了对基础材料科学的见解,该科学控制着墨水配方器或过程开发人员如何接近改善电导率。传输线测量值验证了电气性能的保留最多20 GHz,这证明了该技术对印刷RF组件的实用性。这项工作揭示了一种新的生产强大的印刷电子产品的方法,该电子产品保留了快速原型制作和三维制造的优势,同时实现了航空航天和通信行业中成功所必需的表现。

Previous efforts to directly write conductive metals have been narrowly focused on nanoparticle ink suspensions that require aggressive sintering (>200 °C) and result in low-density, small-grained agglomerates with electrical conductivities <25% of bulk metal. Here, we demonstrate aerosol jet printing of a reactive ink solution and characterize high-density (93%) printed silver traces having near-bulk conductivity and grain sizes greater than the electron mean free path, while only requiring a low-temperature (80 °C) treatment. We have developed a predictive electronic transport model which correlates the microstructure to the measured conductivity and identifies a strategy to approach the practical conductivity limit for printed metals. Our analysis of how grain boundaries and tortuosity contribute to electrical resistivity provides insight into the basic materials science that governs how an ink formulator or process developer might approach improving the conductivity. Transmission line measurements validate that electrical properties are preserved up to 20 GHz, which demonstrates the utility of this technique for printed RF components. This work reveals a new method of producing robust printed electronics that retain the advantages of rapid prototyping and three-dimensional fabrication while achieving the performance necessary for success within the aerospace and communications industries.

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