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Bioinspired Electro-Thermo-Hygro Reversible Shape-Changing Materials by 4D Printing

机译:通过4D打印获得生物启发的电热-湿气可逆形状改变材料

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Hygromorph composites are moisture-induced shape-changing materials that are increasingly studied to develop autonomously actuated deployable structures. The morphing mechanism is based on the high affinity for moisture and the hygroexpansive nature of at least one component, combined with a bilayer microstructure. Among available hygromorphs, those consisting of cellulosic or hydrogel material-based actuators trigger fast responses to moisture. Their stiffness however decreases significantly with the moisture content and that restricts their potential application as soft actuators. This work proposes a novel 4D printed multistimuli-responsive structural material based on conductive carbon reinforcements and combined with a moisture sensitive polymer. These 4D printed materials possess a microstructure that provides the capability of natural actuators like pine cones. The actuation of these functional materials could be either triggered passively by the variation of the ambient moisture, or by electroheating, with the latter leading to the control of the moisture content in initially wet samples via Joule effects. This new class of functional materials shows an increase of the actuation speed by a factor 10 compared to other existing hygromorphs with the same responsiveness. When the electrical heating is turned off, passive cooling and moisture driven actuation is triggered in a full reversible mode.
机译:Hygromorph复合材料是水分诱导的可变形材料,人们对其进行了越来越多的研究,以开发可自动驱动的可展开结构。变形机理是基于对水分的高亲和力和至少一种组分的湿气膨胀性质,并结合了双层微结构。在可用的湿润物中,由纤维素或水凝胶材料基促动器组成的湿润物触发对水分的快速响应。然而,它们的刚度随水分含量而显着降低,这限制了它们作为软致动器的潜在应用。这项工作提出了一种新颖的4D打印的多刺激响应结构材料,该材料基于导电碳增强材料并结合了对湿气敏感的聚合物。这些4D打印材料具有微观结构,可提供像松果这样的自然致动器的功能。这些功能材料的驱动既可以通过环境湿度的变化被动触发,也可以通过电加热被动触发,而电加热则通过焦耳效应控制最初潮湿样品中的水分含量。与其他现有的具有相同响应度的湿润型相比,这种新型的功能材料显示出驱动速度提高了10倍。当电加热关闭时,在完全可逆模式下触发被动冷却和湿气驱动。

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