形状记忆聚合物
材料科学
变形
形状记忆合金
磁性纳米粒子
夹持器
软机器人
智能材料
纳米技术
剩磁
磁铁
复合数
执行机构
磁化
计算机科学
机械工程
磁场
复合材料
纳米颗粒
人工智能
物理
工程类
量子力学
作者
Qiji Ze,Xiao Kuang,Shuai Wu,Janet Wong,S. Macrae Montgomery,Rundong Zhang,Joshua M. Kovitz,Fengyuan Yang,H. Jerry Qi,Ruike Renee Zhao
标识
DOI:10.1002/adma.201906657
摘要
Abstract Shape‐programmable soft materials that exhibit integrated multifunctional shape manipulations, including reprogrammable, untethered, fast, and reversible shape transformation and locking, are highly desirable for a plethora of applications, including soft robotics, morphing structures, and biomedical devices. Despite recent progress, it remains challenging to achieve multiple shape manipulations in one material system. Here, a novel magnetic shape memory polymer composite is reported to achieve this. The composite consists of two types of magnetic particles in an amorphous shape memory polymer matrix. The matrix softens via magnetic inductive heating of low‐coercivity particles, and high‐remanence particles with reprogrammable magnetization profiles drive the rapid and reversible shape change under actuation magnetic fields. Once cooled, the actuated shape can be locked. Additionally, varying the particle loadings for heating enables sequential actuation. The integrated multifunctional shape manipulations are further exploited for applications including soft magnetic grippers with large grabbing force, reconfigurable antennas, and sequential logic for computing.
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