Printing ferromagnetic domains for untethered fast-transforming soft materials

超材料 辅助 软机器人 铁磁性 磁场 磁铁 材料科学 弹性体 层压 软物质 机械工程 光电子学 3D打印 执行机构 纳米技术 电气工程 复合材料 凝聚态物理 物理 工程类 量子力学 胶体 化学工程 图层(电子)
作者
Yoonho Kim,Hyunwoo Yuk,Ruike Renee Zhao,Shawn A. Chester,Xuanhe Zhao
出处
期刊:Nature [Nature Portfolio]
卷期号:558 (7709): 274-279 被引量:2001
标识
DOI:10.1038/s41586-018-0185-0
摘要

Soft materials capable of transforming between three-dimensional (3D) shapes in response to stimuli such as light, heat, solvent, electric and magnetic fields have applications in diverse areas such as flexible electronics1,2, soft robotics3,4 and biomedicine5–7. In particular, magnetic fields offer a safe and effective manipulation method for biomedical applications, which typically require remote actuation in enclosed and confined spaces8–10. With advances in magnetic field control 11 , magnetically responsive soft materials have also evolved from embedding discrete magnets 12 or incorporating magnetic particles 13 into soft compounds to generating nonuniform magnetization profiles in polymeric sheets14,15. Here we report 3D printing of programmed ferromagnetic domains in soft materials that enable fast transformations between complex 3D shapes via magnetic actuation. Our approach is based on direct ink writing 16 of an elastomer composite containing ferromagnetic microparticles. By applying a magnetic field to the dispensing nozzle while printing 17 , we reorient particles along the applied field to impart patterned magnetic polarity to printed filaments. This method allows us to program ferromagnetic domains in complex 3D-printed soft materials, enabling a set of previously inaccessible modes of transformation, such as remotely controlled auxetic behaviours of mechanical metamaterials with negative Poisson’s ratios. The actuation speed and power density of our printed soft materials with programmed ferromagnetic domains are orders of magnitude greater than existing 3D-printed active materials. We further demonstrate diverse functions derived from complex shape changes, including reconfigurable soft electronics, a mechanical metamaterial that can jump and a soft robot that crawls, rolls, catches fast-moving objects and transports a pharmaceutical dose.
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