Zhang Biao, Li Honggeng, Cheng Jianxiang, Ye Haitao, Sakhaei Amir Hosein, Yuan Chao, Rao Ping, Zhang Yuan-Fang, Chen Zhe, Wang Rong, He Xiangnan, Liu Ji, Xiao Rui, Qu Shaoxing, Ge Qi
Frontiers Science Center for Flexible Electronics (FSCFE), Xi'an Institute of Flexible Electronics (IFE) and Xi'an Institute of Biomedical Materials and Engineering (IBME), Northwestern Polytechnical University, 127 West Youyi Road, Xi'an, 710072, China.
Shenzhen Key Laboratory of Biomimetic Robotics and Intelligent Systems, Department of Mechanical and Energy Engineering, Southern University of Science and Technology, Shenzhen, 518055, China.
Adv Mater. 2021 Jul;33(27):e2101298. doi: 10.1002/adma.202101298. Epub 2021 May 17.
4D printing is an emerging fabrication technology that enables 3D printed structures to change configuration over "time" in response to an environmental stimulus. Compared with other soft active materials used for 4D printing, shape-memory polymers (SMPs) have higher stiffness, and are compatible with various 3D printing technologies. Among them, ultraviolet (UV)-curable SMPs are compatible with Digital Light Processing (DLP)-based 3D printing to fabricate SMP-based structures with complex geometry and high-resolution. However, UV-curable SMPs have limitations in terms of mechanical performance, which significantly constrains their application ranges. Here, a mechanically robust and UV-curable SMP system is reported, which is highly deformable, fatigue resistant, and compatible with DLP-based 3D printing, to fabricate high-resolution (up to 2 µm), highly complex 3D structures that exhibit large shape change (up to 1240%) upon heating. More importantly, the developed SMP system exhibits excellent fatigue resistance and can be repeatedly loaded more than 10 000 times. The development of the mechanically robust and UV-curable SMPs significantly improves the mechanical performance of the SMP-based 4D printing structures, which allows them to be applied to engineering applications such as aerospace, smart furniture, and soft robots.
4D打印是一种新兴的制造技术,它能使3D打印结构在“时间”维度上响应环境刺激而改变其形态。与用于4D打印的其他软活性材料相比,形状记忆聚合物(SMP)具有更高的刚度,并且与各种3D打印技术兼容。其中,紫外光(UV)固化的SMP与基于数字光处理(DLP)的3D打印兼容,可用于制造具有复杂几何形状和高分辨率的基于SMP的结构。然而,UV固化的SMP在机械性能方面存在局限性,这显著限制了它们的应用范围。在此,报道了一种机械性能强大且可UV固化的SMP体系,该体系具有高变形性、抗疲劳性,并且与基于DLP的3D打印兼容,可用于制造高分辨率(高达2微米)、高度复杂的3D结构,这些结构在加热时会呈现出大的形状变化(高达1240%)。更重要的是,所开发的SMP体系表现出优异的抗疲劳性,并且可以反复加载超过10000次。机械性能强大且可UV固化的SMP的开发显著提高了基于SMP的4D打印结构的机械性能,这使得它们能够应用于航空航天、智能家具和软机器人等工程领域。