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用于可重构3D成型的软复合材料中激光重编程磁各向异性

Laser reprogramming magnetic anisotropy in soft composites for reconfigurable 3D shaping.

作者信息

Deng Heng, Sattari Kianoosh, Xie Yunchao, Liao Ping, Yan Zheng, Lin Jian

机构信息

Department of Mechanical and Aerospace Engineering, University of Missouri, Columbia, MO, 65211, USA.

Department of Biomedical, Biological, and Chemical Engineering, University of Missouri, Columbia, MO, 65211, USA.

出版信息

Nat Commun. 2020 Dec 10;11(1):6325. doi: 10.1038/s41467-020-20229-6.

Abstract

Responsive soft materials capable of exhibiting various three-dimensional (3D) shapes under the same stimulus are desirable for promising applications including adaptive and reconfigurable soft robots. Here, we report a laser rewritable magnetic composite film, whose responsive shape-morphing behaviors induced by a magnetic field can be digitally and repeatedly reprogrammed by a facile method of direct laser writing. The composite film is made from an elastomer and magnetic particles encapsulated by a phase change polymer. Once the phase change polymer is temporarily melted by transient laser heating, the orientation of the magnetic particles can be re-aligned upon change of a programming magnetic field. By the digital laser writing on selective areas, magnetic anisotropies can be encoded in the composite film and then reprogrammed by repeating the same procedure, thus leading to multimodal 3D shaping under the same actuation magnetic field. Furthermore, we demonstrated their functional applications in assembling multistate 3D structures driven by the magnetic force-induced buckling, fabricating multistate electrical switches for electronics, and constructing reconfigurable magnetic soft robots with locomotion modes of peristalsis, crawling, and rolling.

摘要

对于包括自适应和可重构软机器人在内的诸多有前景的应用而言,能够在相同刺激下呈现出各种三维(3D)形状的响应性软材料是十分理想的。在此,我们报道了一种激光可重写磁性复合薄膜,其由磁场诱导的响应性形状变形行为可以通过一种简便的直接激光写入方法进行数字式且反复的重新编程。该复合薄膜由一种弹性体和被相变聚合物包裹的磁性颗粒制成。一旦相变聚合物通过瞬态激光加热暂时熔化,磁性颗粒的取向就可以在编程磁场变化时重新排列。通过在选定区域进行数字激光写入,磁各向异性可以被编码到复合薄膜中,然后通过重复相同的过程进行重新编程,从而在相同的驱动磁场下实现多模态3D成型。此外,我们展示了它们在组装由磁力诱导屈曲驱动的多态3D结构、制造用于电子设备的多态电气开关以及构建具有蠕动、爬行和滚动运动模式的可重构磁性软机器人等方面的功能应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bfa1/7730436/4908248e89f1/41467_2020_20229_Fig1_HTML.jpg

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