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通过微波加热对3D打印形状记忆复合材料进行快速且选择性的驱动。

Rapid and selective actuation of 3D-printed shape-memory composites via microwave heating.

作者信息

An Soo-Chan, Lim Yeonsoo, Jun Young Chul

机构信息

Department of Materials Science and Engineering, Ulsan National Institute of Science and Technology (UNIST), Ulsan, 44919, Republic of Korea.

出版信息

Sci Rep. 2023 Oct 24;13(1):18179. doi: 10.1038/s41598-023-45519-z.

Abstract

Three-dimensional (3D) printing allows the fabrication of complex shapes with high resolutions. However, the printed structures typically have fixed shapes and functions. Four-dimensional printing allows the shapes of 3D-printed structures to be transformed in response to external stimuli. Among the external stimuli, light has unique advantages for remote thermal actuation. However, light absorption in opaque structures occurs only near the sample surface; thus, actuation can be slow. Here, we propose and experimentally demonstrate the rapid and selective actuation of 3D-printed shape-memory polymer (SMP) composites using microwave heating. The SMP composite filaments are prepared using different amounts of graphite flakes. Microwave radiation can penetrate the entire printed structures and induce rapid heating. With sufficient graphite contents, the printed SMP composites are heated above their glass transition temperature within a few seconds. This leads to rapid thermal actuation of the 3D-printed SMP structures. Finally, dual-material 3D printing is demonstrated to induce selective microwave heating and control actuation motion. Our experiments and simulations indicate that microwave heating of SMP composites can be an effective method for the rapid and selective actuation of complex structures.

摘要

三维(3D)打印能够制造出具有高分辨率的复杂形状。然而,打印出的结构通常具有固定的形状和功能。四维打印则能使3D打印结构的形状根据外部刺激发生转变。在各种外部刺激中,光对于远程热驱动具有独特优势。然而,不透明结构中的光吸收仅发生在样品表面附近,因此驱动可能会很缓慢。在此,我们提出并通过实验证明了利用微波加热对3D打印形状记忆聚合物(SMP)复合材料进行快速且选择性的驱动。使用不同含量的石墨薄片制备SMP复合长丝。微波辐射能够穿透整个打印结构并引发快速加热。当石墨含量足够时,打印出的SMP复合材料能在几秒钟内被加热至高于其玻璃化转变温度。这导致3D打印的SMP结构实现快速热驱动。最后,展示了双材料3D打印可引发选择性微波加热并控制驱动运动。我们的实验和模拟表明,SMP复合材料的微波加热可以成为对复杂结构进行快速且选择性驱动的有效方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bcd0/10598202/43b46c560e30/41598_2023_45519_Fig1_HTML.jpg

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