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磁性自修复复合材料:合成与应用。

Magnetic Self-Healing Composites: Synthesis and Applications.

机构信息

Department of Chemical Engineering, Soft Matter, Rheology and Technology (SMaRT), KU Leuven, Celestijnenlaan 200J, 3001 Heverlee, Belgium.

Engineering of Molecular NanoSystems, Ecole Polytechnique de Bruxelles, Université Libre de Bruxelles (ULB), Avenue F. D. Roosevelt 50, CP165/64, 1050 Brussels, Belgium.

出版信息

Molecules. 2022 Jun 13;27(12):3796. doi: 10.3390/molecules27123796.

Abstract

Magnetic composites and self-healing materials have been drawing much attention in their respective fields of application. Magnetic fillers enable changes in the material properties of objects, in the shapes and structures of objects, and ultimately in the motion and actuation of objects in response to the application of an external field. Self-healing materials possess the ability to repair incurred damage and consequently recover the functional properties during healing. The combination of these two unique features results in important advances in both fields. First, the self-healing ability enables the recovery of the magnetic properties of magnetic composites and structures to extend their service lifetimes in applications such as robotics and biomedicine. Second, magnetic (nano)particles offer many opportunities to improve the healing performance of the resulting self-healing magnetic composites. Magnetic fillers are used for the remote activation of thermal healing through inductive heating and for the closure of large damage by applying an alternating or constant external magnetic field, respectively. Furthermore, hard magnetic particles can be used to permanently magnetize self-healing composites to autonomously re-join severed parts. This paper reviews the synthesis, processing and manufacturing of magnetic self-healing composites for applications in health, robotic actuation, flexible electronics, and many more.

摘要

磁性复合材料和自修复材料在各自的应用领域引起了广泛关注。磁性填料能够改变物体的材料性能、形状和结构,最终能够在外磁场的作用下改变物体的运动和驱动方式。自修复材料具有修复所产生的损伤的能力,并在修复过程中恢复其功能特性。这两种独特特性的结合在这两个领域都取得了重要的进展。首先,自修复能力能够恢复磁性复合材料和结构的磁性,从而延长它们在机器人技术和生物医学等应用中的使用寿命。其次,磁性(纳米)颗粒为改善所得自修复磁性复合材料的愈合性能提供了许多机会。磁性填料可用于通过感应加热远程激活热修复,以及分别通过施加交流或恒定外磁场来闭合大的损伤。此外,硬磁性颗粒可用于永久磁化自修复复合材料,以自动重新连接断开的部分。本文综述了磁性自修复复合材料在健康、机器人驱动、柔性电子等领域的合成、加工和制造。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8268/9228312/dbd79207b032/molecules-27-03796-g002.jpg

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