Materials, design, and fabrication of shape programmable polymers

Q1 Materials Science
Xiao Kuang, D. J. Roach, Craig M. Hamel, Kai Yu, Jerry H Qi
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引用次数: 13

Abstract

Programmable matter is a class of materials whose properties can be programmed to achieve a specific state upon a stimulus. Among them, shape programmable materials can change their shape, topographical architecture, or dimension triggered by external stimuli after material fabrication, finding broad applications in smart devices, soft robotics, actuators, reconfigurable metamaterials, and biomedical devices. Shape programmable polymers (SPPs) possess the advantages of low cost, the ability to achieve widely tunable stimuli response, and synthetic flexibility. Recent development has resulted in various new materials and fabrication techniques for SPPs. However, to better design and fabricate SPPs to satisfy specific applications, a more comprehensive understanding of SPPs is required. In this review, we provide state-of-the-art advances in materials, design methods, and fabrication techniques for SPPs. Based on different shape-shifting mechanisms, four most widely studied shape-shifting polymers, including shape-memory polymers, hydrogels, liquid crystal elastomers, and magnetoactive elastomers, are categorized. After outlining the material models of SPPs, the widely used approaches of bilayer, biomimetic, and simulation-guided design, are summarized. For the fabrication side, three main manufacturing techniques for SPPs by replica molding, electrospinning, and 3D printing are reviewed with an emphasis on 3D printing. Finally, the challenges and future perspectives for SPPs fabrication are discussed.
形状可编程聚合物的材料、设计和制造
可编程物质是一类材料,其性质可以被编程以在刺激下达到特定状态。其中,形状可编程材料在材料制造后可以改变其形状、拓扑结构或由外部刺激触发的尺寸,在智能设备、软机器人、致动器、可重构超材料和生物医学设备中有着广泛的应用。形状可编程聚合物(SPPs)具有成本低、能够实现广泛可调的刺激响应和合成灵活性的优点。最近的发展产生了用于SPP的各种新材料和制造技术。然而,为了更好地设计和制造SPP以满足特定的应用,需要对SPP有更全面的了解。在这篇综述中,我们提供了SPP材料、设计方法和制造技术的最新进展。根据不同的形状变化机制,对四种研究最广泛的形状变化聚合物进行了分类,包括形状记忆聚合物、水凝胶、液晶弹性体和磁活性弹性体。在概述了SPP的材料模型后,总结了广泛使用的双层、仿生和模拟引导设计方法。在制造方面,回顾了通过复制成型、静电纺丝和3D打印的SPP的三种主要制造技术,重点是3D打印。最后,讨论了SPP制造的挑战和未来前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Multifunctional Materials
Multifunctional Materials Materials Science-Materials Science (miscellaneous)
CiteScore
12.80
自引率
0.00%
发文量
9
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