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Graphene‐Based Polymer Bilayers with Superior Light‐Driven Properties for Remote Construction of 3D Structures

机译:具有优异光驱动特性的基于石墨烯的聚合物双层可用于3D结构的远程构建

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摘要

3D structure assembly in advanced functional materials is important for many areas of technology. Here, a new strategy exploits IR light‐driven bilayer polymeric composites for autonomic origami assembly of 3D structures. The bilayer sheet comprises a passive layer of poly(dimethylsiloxane) (PDMS) and an active layer comprising reduced graphene oxides (RGOs), thermally expanding microspheres (TEMs), and PDMS. The corresponding fabrication method is versatile and simple. Owing to the large volume expansion of the TEMs, the two layers exhibit large differences in their coefficients of thermal expansion. The RGO‐TEM‐PDMS/PDMS bilayers can deflect toward the PDMS side upon IR irradiation via the cooperative effect of the photothermal effect of the RGOs and the expansion of the TEMs, and exhibit excellent light‐driven, a large bending deformation, and rapid responsive properties. The proposed RGO‐TEM‐PDMS/PDMS composites with excellent light‐driven bending properties are demonstrated as active hinges for building 3D geometries such as bidirectionally folded columns, boxes, pyramids, and cars. The folding angle (ranging from 0° to 180°) is well‐controlled by tuning the active hinge length. Furthermore, the folded 3D architectures can permanently preserve the deformed shape without energy supply. The presented approach has potential in biomedical devices, aerospace applications, microfluidic devices, and 4D printing.
机译:先进功能材料中的3D结构组装对于许多技术领域都很重要。在这里,一种新的策略将红外光驱动的双层聚合物复合材料用于3D结构的自动折纸组装。双层板包括聚二甲基硅氧烷(PDMS)的无源层和包含还原的氧化石墨烯(RGO),热膨胀微球(TEM)和PDMS的有源层。相应的制造方法是通用且简单的。由于TEM的大体积膨胀,这两层在其热膨胀系数上显示出很大的差异。 RGO-TEM-PDMS / PDMS双层可以通过RGO的光热效应和TEM的膨胀共同作用,在IR辐射下向PDMS一侧偏转,并且表现出出色的光驱动,大的弯曲变形和快速的响应特性。拟议中的RGO-TEM-PDMS / PDMS复合材料具有出色的光驱动弯曲性能,被证明是用于构建3D几何形状的主动铰链,例如双向折叠的圆柱,盒子,金字塔和汽车。通过调整活动铰链的长度,可以很好地控制折角(范围从0°到180°)。此外,折叠的3D架构可以永久保留变形的形状而无需提供能量。提出的方法在生物医学设备,航空航天应用,微流体设备和4D打印方面具有潜力。

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