Ma Chunping, Wu Shuai, Ze Qiji, Kuang Xiao, Zhang Rundong, Qi H Jerry, Zhao Ruike
Department of Mechanical and Aerospace Engineering, The Ohio State University, Columbus, Ohio 43210, United States.
The George W. Woodruff School of Mechanical Engineering, Georgia Institute of Technology, Atlanta, Georgia 30332, United States.
ACS Appl Mater Interfaces. 2021 Mar 24;13(11):12639-12648. doi: 10.1021/acsami.0c13863. Epub 2020 Sep 8.
Magnetic soft materials (MSMs) have shown potential in soft robotics, actuators, metamaterials, and biomedical devices because they are capable of untethered, fast, and reversible shape reconfigurations as well as controllable dynamic motions under applied magnetic fields. Recently, magnetic shape memory polymers (M-SMPs) that incorporate hard magnetic particles in shape memory polymers demonstrated superior shape manipulation performance by realizing reprogrammable, untethered, fast, and reversible shape transformation and shape locking in one material system. In this work, we develop a multimaterial printing technology for the complex structural integration of MSMs and M-SMPs to explore their enhanced multimodal shape transformation and tunable properties. By cooperative thermal and magnetic actuation, we demonstrate multiple deformation modes with distinct shape configurations, which further enable active metamaterials with tunable physical properties such as sign-change Poisson's ratio. Because of the multiphysics response of the M-MSP/MSM metamaterials, one distinct feature is their capability of shifting between various global mechanical behaviors such as expansion, contraction, shear, and bending. We anticipate that the multimaterial printing technique opens new avenues for the fabrication of multifunctional magnetic materials.
磁性软材料(MSMs)在软机器人技术、致动器、超材料和生物医学设备中显示出潜力,因为它们能够在施加的磁场下进行无束缚、快速且可逆的形状重构以及可控的动态运动。最近,在形状记忆聚合物中掺入硬磁颗粒的磁性形状记忆聚合物(M-SMPs)通过在一种材料系统中实现可重新编程、无束缚、快速且可逆的形状转变和形状锁定,展现出卓越的形状操纵性能。在这项工作中,我们开发了一种用于MSMs和M-SMPs复杂结构集成的多材料打印技术,以探索它们增强的多模态形状转变和可调特性。通过热和磁协同驱动,我们展示了具有不同形状构型的多种变形模式,这进一步实现了具有可调物理特性(如符号变化泊松比)的有源超材料。由于M-MSP/MSM超材料的多物理响应,一个显著特征是它们能够在各种全局机械行为(如膨胀、收缩、剪切和弯曲)之间转换。我们预计,多材料打印技术为多功能磁性材料的制造开辟了新途径。