Department of Mechanical and Aerospace Engineering, University of Missouri-Columbia, Columbia, Missouri 65211, USA.
Soft Matter. 2018 Jan 31;14(5):765-772. doi: 10.1039/c7sm01796k.
There is a significant need of advanced materials that can be fabricated into functional devices with defined three-dimensional (3D) structures for application in tissue engineering, flexible electronics, and soft robotics. This need motivates an emerging four-dimensional (4D) printing technology, by which printed 3D structures consisting of active materials can transform their configurations over time in response to stimuli. Despite the ubiquity of active materials in performing self-morphing processes, their potential for 4D printing has not been fully explored to date. In this study, we demonstrate 4D printing of a commercial polymer, SU-8, which has not been reported to date in this field. The working principle is based on a self-morphing process of the printed SU-8 structures through spatial control of the swelling medium inside the polymer matrix by a modified process. To understand the self-morphing behavior, fundamental studies on the effect of the geometries including contours and filling patterns were carried out. A soft electronic device as an actuator was demonstrated to realize an application of this programmable polymer using the 3D printing technology. These studies provide a new paradigm for application of SU-8 in 4D printing, paving a new route to the exploration of more potential candidates by this demonstrated strategy.
对于能够制造出具有定义的三维(3D)结构的功能器件的先进材料存在巨大需求,这些功能器件可应用于组织工程、柔性电子和软机器人领域。这种需求推动了新兴的四维(4D)打印技术的发展,通过该技术,由活性材料组成的打印 3D 结构可以在时间的推移中响应刺激而改变其配置。尽管活性材料在执行自变形过程中无处不在,但迄今为止,其在 4D 打印中的潜力尚未得到充分探索。在本研究中,我们展示了一种商业聚合物 SU-8 的 4D 打印,迄今为止在该领域尚未有报道。其工作原理基于打印的 SU-8 结构通过修改后的工艺通过控制聚合物基质内的溶胀介质的空间来实现自变形过程。为了理解自变形行为,对包括轮廓和填充图案在内的几何形状的影响进行了基础研究。演示了一种软电子器件作为执行器,以使用 3D 打印技术实现这种可编程聚合物的应用。这些研究为 SU-8 在 4D 打印中的应用提供了新的范例,通过这种已证明的策略为探索更多潜在的候选材料开辟了新途径。