Centre for Additive Manufacturing and ‡Manufacturing Metrology Team, Faculty of Engineering, University of Nottingham , Nottingham, U.K. , NG7 2RD.
ACS Appl Mater Interfaces. 2017 Feb 22;9(7):6560-6570. doi: 10.1021/acsami.6b14787. Epub 2017 Feb 7.
Despite the advancement of additive manufacturing (AM)/3-dimensional (3D) printing, single-step fabrication of multifunctional parts using AM is limited. With the view of enabling multifunctional AM (MFAM), in this study, sintering of metal nanoparticles was performed to obtain conductivity for continuous line inkjet printing of electronics. This was achieved using a bespoke three-dimensional (3D) inkjet-printing machine, JETx, capable of printing a range of materials and utilizing different post processing procedures to print multilayered 3D structures in a single manufacturing step. Multiple layers of silver were printed from an ink containing silver nanoparticles (AgNPs) and infrared sintered using a swathe-by-swathe (SS) and layer-by-layer sintering (LS) regime. The differences in the heat profile for the SS and LS was observed to influence the coalescence of the AgNPs. Void percentage of both SS and LS samples was higher toward the top layer than the bottom layer due to relatively less IR exposure in the top than the bottom. The results depicted a homogeneous microstructure for LS of AgNPs and showed less deformation compared to the SS. Electrical resistivity of the LS tracks (13.6 ± 1 μΩ cm) was lower than the SS tracks (22.5 ± 1 μΩ cm). This study recommends the use of LS method to sinter the AgNPs to obtain a conductive track in 25% less time than SS method for MFAM.
尽管增材制造(AM)/三维(3D)打印技术不断发展,但使用 AM 进行多功能部件的一步制造仍然有限。为了实现多功能 AM(MFAM),本研究通过烧结金属纳米颗粒来获得导电性,从而实现电子的连续线条喷墨打印。这是通过使用定制的三维(3D)喷墨打印机 JETx 实现的,该打印机能够打印多种材料,并利用不同的后处理程序在单个制造步骤中打印多层 3D 结构。通过在包含银纳米颗粒(AgNPs)的油墨中打印多层银,并使用条带对条带(SS)和逐层烧结(LS)工艺进行红外烧结,实现了这一目标。观察到 SS 和 LS 的热分布差异会影响 AgNPs 的熔合。由于顶层的红外暴露相对较少,因此 SS 和 LS 样品的顶层的空隙百分比高于底层。LS 处理的 AgNPs 呈现出均匀的微观结构,与 SS 相比变形较小。LS 轨迹的电阻率(13.6 ± 1 μΩ cm)低于 SS 轨迹(22.5 ± 1 μΩ cm)。本研究建议使用 LS 方法烧结 AgNPs,以比 SS 方法在 25%的时间内获得导电轨迹,从而实现 MFAM。