Recent Progress in 3D Printing of Polymer Materials as Soft Actuators and Robots

Xiangren Kong, Min Dong, Miao Du, Jin Qian, Jun Yin, Qiang Zheng and Zi Liang Wu*, 
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Abstract

With inspiration from natural systems, various soft actuators and robots have been explored in recent years with versatile applications in biomedical and engineering fields. Soft active materials with rich stimulus-responsive characteristics have been an ideal candidate to devise these soft machines by using different manufacturing technologies. Among these technologies, three-dimensional (3D) printing shows advantages in fabricating constructs with multiple materials and sophisticated architectures. In this Review, we aim to provide an overview of recent progress on 3D printing of soft materials, robotics performances, and representative applications. Typical 3D printing techniques are briefly introduced, followed by state-of-the-art advances in 3D printing of hydrogels, shape memory polymers, liquid crystalline elastomers, and their hybrids as soft actuators and robots. From the perspective of material properties, the commonly used printing techniques and action-generation principles for typical printed constructs are discussed. Actuation performances, locomotive behaviors, and representative applications of printed soft materials are summarized. The relationship between printing structures and action performances of soft actuators and robots is also briefly discussed. Finally, the advantages and limitations of each soft material are compared, and the remaining challenges and future directions in this field are prospected.

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作为软致动器和机器人的聚合物材料三维打印技术的最新进展
近年来,人们从自然系统中汲取灵感,探索出各种软致动器和机器人,并将其广泛应用于生物医学和工程领域。具有丰富刺激响应特性的软活性材料是利用不同制造技术设计这些软机器的理想候选材料。在这些技术中,三维(3D)打印技术在制造具有多种材料和复杂结构的构造物方面显示出优势。在本综述中,我们将概述软材料三维打印技术的最新进展、机器人性能和代表性应用。首先简要介绍了典型的三维打印技术,然后介绍了水凝胶、形状记忆聚合物、液晶弹性体及其混合物作为软致动器和机器人的三维打印技术的最新进展。从材料特性的角度,讨论了典型打印结构的常用打印技术和动作生成原理。总结了印刷软材料的致动性能、运动行为和代表性应用。此外,还简要讨论了印刷结构与软致动器和机器人动作性能之间的关系。最后,比较了每种软材料的优势和局限性,并展望了这一领域仍然面临的挑战和未来的发展方向。
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